31.45 g of dilute trioxonitrate (V) acid containing 10% W/W of pure acid will be required to dissolve 2.5 g of chalk.
We need to use balanced chemical equation of the reaction between calcium carbonate and trioxonitrate (V) acid to determine the number of moles of acid required to dissolve 2.5 g of chalk.
[tex]CaCO_3 + 2HNO_3 → Ca(NO_3)_2 + CO_2 + H_2O[/tex]
From the equation, one mole of [tex]CaCO_3[/tex] reacts with two moles of [tex]HNO_3[/tex]. The molar mass of CaCO3 is 100.09 g/mol.
[tex]Number\ of\ moles\ of\ CaCO_3 = 2.5 g / 100.09 g/mol = 0.02498 mol[/tex]
[tex]Number\ of\ moles\ of HNO_3 = 2 * 0.02498 = 0.04996 mol[/tex]
Now, we can calculate the mass of dilute trioxonitrate (V) acid containing 10% W/W of pure acid required to provide 0.04996 mol of [tex]HNO_3[/tex].
Assuming the density of the dilute trioxonitrate (V) acid is 1.1 g/cm3, the mass of the acid required will be:
[tex]Mass\ of\ acid = (0.04996 mol * 63.01 g/mol) / 0.1 = 31.45 g[/tex]
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What is the empirical formula for a compound that is 94. 1% oxygen and 5. 90 % hydrogen?
The empirical formula for this compound is H1O1.
To find the empirical formula of a compound with 94.1% oxygen and 5.9% hydrogen, we first assume a 100g sample. This gives us 94.1g of oxygen and 5.9g of hydrogen. Next, we'll convert these values to moles:
Oxygen: 94.1g / 16g/mol (molar mass of O) ≈ 5.88 moles
Hydrogen: 5.9g / 1g/mol (molar mass of H) ≈ 5.9 moles
Now, we'll find the mole ratio by dividing both values by the smallest number of moles:
Oxygen: 5.88 / 5.88 ≈ 1
Hydrogen: 5.9 / 5.88 ≈ 1
The empirical formula for this compound is H1O1, which can be simplified to H2O (water).
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A solution consisting of 11. 4 g NH4Cl in 150 ml of water is titrated with 0. 20 M KOH.
a. How many milliliters of KOH are required to reach the equivalence point?
b. Calculate {Cl-], [K+], and [NH3] at the equivalence point. Assume volumes are additive
a.It requires 1066 mL of 0.20 M KOH to reach the equivalence point.
b.The equivalence point, the concentration of [Cl-], [K+], and [[tex]NH_{3}[/tex]] in the solution, is 0.175 M.
What is the Equivalence point?
The chemical equivalent between the added titrant and the sample analyte is called the equivalence point in a titration.
a. We need to know how many moles of [tex]NH_{4}Cl[/tex] are in the solution to calculate the volume of 0.20 M KOH needed to achieve the equivalence point.
First, we can determine how many moles [tex]NH_{4}Cl[/tex] are present in the solution:
moles [tex]NH_{4}Cl[/tex] = mass / molar mass
moles [tex]NH_{4}Cl[/tex] = 11.4 g / 53.49 g/mol (molar mass of [tex]NH_{4}Cl[/tex])
moles [tex]NH_{4}Cl[/tex] = 0.2132 mol
At the equivalence point, all the [tex]NH_{4}Cl[/tex] has interacted with the KOH, resulting in an equal amount of moles of [tex]NH_{3}[/tex] and [tex]H_{2} O[/tex]. This suggests that 0.2132 moles of KOH are also needed to react with [tex]NH_{4}Cl[/tex] The volume of 0.20 M KOH required to react with 0.2132 mol can be determined using the equation for the reaction between [tex]NH_{4}Cl[/tex] and KOH:
[tex]NH_{4}Cl[/tex] + KOH → [tex]NH_{3}[/tex] + [tex]H_{2}O[/tex] + KCl
moles KOH = moles [tex]NH_{4}Cl[/tex]
= 0.2132 mol
volume of KOH = moles KOH / concentration of KOH
= 0.2132 mol / 0.20 mol/L
= 1.066 L or 1066 mL
Therefore, 1066 mL of 0.20 M KOH is required to reach the equivalence point.
b. At the equivalence point, an equal amount of moles of KOH and [tex]NH_{4}Cl[/tex] interacted to create [tex]NH_{3}[/tex], [tex]H_{2}O[/tex], and KCl.
We may determine the concentration of [Cl-] and [K+] in the solution following the reaction at the equivalence point by assuming volumes are additive:
moles KCl = moles [tex]NH_{4}Cl[/tex]
= 0.2132 mol
volume of solution = 150 mL + volume of KOH added
= 150 mL + 1066 mL
= 1216 mL
= 1.216 L
[Cl-] = moles KCl / volume of solution
[Cl-] = 0.2132 mol / 1.216 L
[Cl-] = 0.175 M
[K+] = moles KCl / volume of solution
[K+] = 0.2132 mol / 1.216 L
[K+] = 0.175 M
The fact that the reaction between [tex]NH_{4}Cl[/tex]and KOH is a one-to-one reaction can be used to compute the concentration of [[tex]NH_{3}[/tex]]. As a result, 0.2132 mol of NH3 is likewise created at the equivalence point. Using the overall volume of the solution, we can get the [[tex]NH_{3}[/tex]] concentration:
[[tex]NH_{3}[/tex]] = moles [tex]NH_{3}[/tex]/ total volume of solution
[[tex]NH_{3}[/tex]] = 0.2132 mol / 1.216 L
[[tex]NH_{3}[/tex]] = 0.175 M
Therefore, at the equivalence point, the concentration of [Cl-], [K+], and [[tex]NH_3}[/tex]] in the solution is 0.175 M.
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Bailey got sick and heard that he should gargle salt water to help his throat. He adds 25g of salt(NaCl) to a cup with 250mL of water(H2O). What is the concentration of this salt water in mol/L? Sodium has atomic mass 22. 99g/mol and chlorine has atomic mass 35. 45g/mol
The concentration of the salt water solution is 1.71 mol/L.
When Bailey got sick, he was advised to gargle salt water to help ease the pain in his throat. To make the salt water solution, he added 25g of salt (NaCl) to a cup containing 250mL of water (H2O). Now we need to determine the concentration of this salt water solution in mol/L.
To do this, we first need to find the number of moles of NaCl in the solution. We can calculate this by dividing the mass of NaCl by its molar mass, which is the sum of the atomic masses of sodium and chlorine. The atomic mass of sodium is 22.99g/mol and that of chlorine is 35.45g/mol, so the molar mass of NaCl is 58.44g/mol.
Number of moles of NaCl = 25g ÷ 58.44g/mol = 0.427mol
Next, we need to find the volume of the solution in liters, which is 250mL ÷ 1000mL/L = 0.25L.
Finally, we can calculate the concentration of the salt water solution by dividing the number of moles of NaCl by the volume of the solution in liters.
Concentration of salt water solution = 0.427mol ÷ 0.25L = 1.71 mol/L
Therefore, the concentration of the salt water solution is 1.71 mol/L. This means that for every liter of the solution, there are 1.71 moles of NaCl present. It is important to note that this concentration is much higher than what is typically recommended for gargling salt water, which is usually a 0.9% (or 0.154 mol/L) solution.
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When water boils, what are the bubbles composed of?.
When water boils, the bubbles are composed of water vapor or steam.
The bubbles form when the water is heated to its boiling point and the water molecules gain enough thermal energy to overcome the intermolecular forces holding them together in the liquid state.
As the water molecules escape into the gaseous state, they form bubbles that rise to the surface of the liquid and release the steam into the atmosphere.
The bubbles are filled with water vapor, which is less dense than liquid water and has a higher thermal energy due to the increased molecular motion in the gas phase. Once the bubbles reach the surface, they burst and release the steam into the air.
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A 983. 6 g sample of antimony undergoes a temperature change of +31. 51 °C. The specific heat capacity of antimony is 0. 049 cal/(g·°C). How many calories of heat were transferred by the sample?
The sample transferred 1,518.7 calories of heat.
First, we need to calculate the heat absorbed or released by the sample using the formula:
q = m * c * ∆T
where q is the heat transferred, m is the mass of the sample, c is the specific heat capacity of antimony, and ∆T is the temperature change.
Plugging in the values, we get:
q = 983.6 g * 0.049 cal/(g·°C) * 31.51 °C
q = 1,518.7 cal
Therefore, the sample transferred 1,518.7 calories of heat.
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A piece of unknown metal with a mass of 23.8 g is heated to 100.0°C and is dropped into 50.0 g of water at 24.0°C. The final temperature is 32.5°C. What is the specific heat of the metal?
The metal has a specific heat of 0.385 J/g°C.
To solve for the specific heat of the metal, we need to use the equation:
Q = mCΔT
where Q is the heat transferred, m is the mass of the substance, C is the specific heat, and ΔT is the change in temperature.
In this case, the heat transferred from the metal to the water can be calculated as:
Q = mcΔT
where c is the specific heat of water (4.184 J/g°C) and ΔT is the change in temperature of the water (from 24.0°C to 32.5°C).
Q = (50.0 g)(4.184 J/g°C)(32.5°C - 24.0°C)
Q = 1743.8 J
The heat transferred from the metal to the water is equal to the heat absorbed by the metal:
Q = mCΔT
where m is the mass of the metal and ΔT is the change in temperature of the metal (from 100.0°C to 32.5°C).
1743.8 J = (23.8 g)C(100.0°C - 32.5°C)
C = 0.385 J/g°C
Therefore, the specific heat of the metal is 0.385 J/g°C.
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(01. 05 MC)
During an experiment a thermometer was placed in a beaker containing hydrogen peroxide. The following observations were recorded when yeast granules were added to hydrogen peroxide.
Observation 1: Fizzing and bubbling took place.
Observation 2: The temperature began to rise.
Based on the observation, justify the type of change (physical or chemical) that took place
When yeast granules were added to hydrogen peroxide, two observations were made: fizzing and bubbling took place, and the temperature began to rise. These observations suggest that a chemical change occurred.
Chemical changes involve a transformation of the molecular structure of a substance, resulting in the formation of new substances with different properties. In this case, the hydrogen peroxide likely reacted with the yeast granules to produce oxygen gas and water, which caused the fizzing and bubbling.
The increase in temperature may be a result of the energy released during the chemical reaction.
Physical changes, on the other hand, involve a change in the physical state or appearance of a substance, without any alteration to its molecular structure. For example, melting ice is a physical change, as the solid ice changes to liquid water, but the molecules themselves remain unchanged.
In summary, the observations of fizzing and bubbling, as well as the temperature increase, suggest that a chemical change occurred when yeast granules were added to hydrogen peroxide. This change likely involved the production of oxygen gas and water.
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What percentage of isopropyl alcohol is best for disinfecting?.
Isopropyl alcohol (IPA) is an effective disinfectant when used in the appropriate concentration.
The Centers for Disease Control and Prevention (CDC) recommends using solutions with at least 70% IPA for disinfecting surfaces against COVID-19.
Higher concentrations (e.g., 90-99%) of isopropyl alcohol may evaporate too quickly to be effective, while lower concentrations (e.g., 50%) may not be strong enough to kill certain types of germs.
It is also important to follow proper application procedures and allow sufficient contact time for the disinfectant to work effectively.
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What is the temperature of a gas at 100 kPa if the gas had a temperature of
26°C at 200 kPa?
The temperature of the gas at 100 kPa is approximately 149.575 K.
The temperature of a gas at 100 kPa, when it initially had a temperature of 26°C at 200 kPa, can be determined using the combined gas law. The combined gas law relates the initial and final pressures, volumes, and temperatures of a gas, and can be written as:
(P1 * V1) / T1 = (P2 * V2) / T2
where P1 and P2 are the initial and final pressures, V1 and V2 are the initial and final volumes, and T1 and T2 are the initial and final temperatures.
In this case, we are given the initial pressure (P1 = 200 kPa), initial temperature (T1 = 26°C), and final pressure (P2 = 100 kPa). We can convert the initial temperature to Kelvin by adding 273.15, so T1 = 26°C + 273.15 = 299.15 K.
Since the problem does not specify any changes in volume, we can assume that the volume remains constant (V1 = V2). This simplifies the equation to:
(P1 * V) / T1 = (P2 * V) / T2
Canceling out the volume terms (V) on both sides:
P1 / T1 = P2 / T2
Now, we can solve for the final temperature, T2:
T2 = (P2 * T1) / P1
T2 = (100 kPa * 299.15 K) / 200 kPa
T2 ≈ 149.575 K
Therefore, the temperature of the gas at 100 kPa is approximately 149.575 K.
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In the 17th group of modern periodic table, there are Flourine, Chlorine, Bromine, Iodine respectively. Which element has the highest ability to receive electrons? Why?
In the 17th group of the modern periodic table, fluorine has the highest ability to receive electrons.
This is because it has the highest electronegativity among the elements in this group, making it more likely to attract and accept electrons from other elements during chemical reactions.
Fluorine is indeed the most electronegative element in the periodic table. Electronegativity is a measure of an atom's tendency to attract electrons in a chemical bond.
Fluorine's high electronegativity arises from its small atomic size and strong nuclear charge, which results in a strong attraction for electrons.
Due to its high electronegativity, fluorine has a strong ability to attract and accept electrons from other elements during chemical reactions. It readily forms covalent bonds by sharing electrons with less electronegative elements.
Fluorine's electron affinity and its ability to form stable, negatively charged ions make it a strong oxidizing agent.
It's worth noting that the trend of increasing electronegativity generally follows from left to right across a period and decreases down a group in the periodic table.
Therefore, while fluorine is the most electronegative element in Group 17 (the halogens), it may not necessarily have the highest ability to receive electrons among all elements in the 17th group.
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In air, nitric oxide gas reacts with oxygen to produce nitrogen dioxide,
which appears brown in color:
2 no(g) + o2(g) = 2no,(9)
what mass in grams of nitrogen dioxide would be produced by the
complete reaction of 0.551 grams of nitric oxide gas?
The complete reaction of 0.551 grams of nitric oxide gas would produce 0.846 grams of nitrogen dioxide.
The given chemical equation shows that 2 moles of nitric oxide (NO) gas reacts with 1 mole of oxygen (O2) gas to produce 2 moles of nitrogen dioxide (NO2). Therefore, the stoichiometric ratio of NO to NO2 is 2:2 or 1:1. This means that for every 1 mole of NO gas, 1 mole of NO2 gas is produced.
To determine the mass of NO2 produced from 0.551 grams of NO gas, we need to first convert the mass of NO into moles using its molar mass. The molar mass of NO is 30.01 g/mol (14.01 g/mol for N and 16.00 g/mol for O).
0.551 g of NO is equivalent to 0.551 g / 30.01 g/mol = 0.0184 moles of NO.
Since the stoichiometric ratio of NO to NO2 is 1:1, the number of moles of NO2 produced will also be 0.0184 moles.
The molar mass of NO2 is 46.01 g/mol (14.01 g/mol for N and 2 x 16.00 g/mol for 2 O atoms).
Therefore, the mass of NO2 produced will be:
0.0184 moles x 46.01 g/mol = 0.846 grams.
Hence, the complete reaction of 0.551 grams of nitric oxide gas would produce 0.846 grams of nitrogen dioxide.
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A 22 -ml sample of 12m h2so4 is diluted to a volume of 1200.0 ml. what is the molarity of the diluted solution?
The molarity of the solution diluted to the 1200.0 ml volume is found to be 0.220M.
The number of moles of H₂SO₄ in the original 22 mL solution can be calculated using the following formula,
moles of H₂SO₄ = Molarity × Volume (in liters)
22 mL = 22/1000 L
= 0.022 L
Substituting the given values, we get,
moles of H₂SO₄ = 12 M × 0.022 L
= 0.264 moles
The number of moles of H₂SO₄ will not change once the solution is diluted to a volume of 1200.0 mL since no H₂SO₄ is added or taken away. Consequently, the following formula can be used to determine the molarity of the diluted solution:
Molarity = moles of H₂SO₄ / Volume (in liters)
Again, we need to convert the volume to liters,
1200.0 mL = 1200.0/1000 L
= 1.200 L
Substituting the values, we get,
Molarity = 0.264 moles / 1.200 L
= 0.220 M
Therefore, the molarity of the diluted solution is 0.220 M.
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The molar solubility of C a ( O H ) 2 was experimentally determined to be 0. 020 M. Based on this value, what is the K s p of C a ( O H ) 2 ?
Answer:
Ksp = [tex]3.2*10^{-5}[/tex]
Explanation:
If 0.020 M of Ca(OH)2 dissociates, then we can follow the Ksp formula.
Ksp = [tex][A]^{a} [B]^{b}[/tex] Eq.1
[tex]Ca(OH)2 -- > Ca^{2+} (aq) + 2 OH^{-} (aq)[/tex] Eq.2
[tex]0.02M Ca(OH)2 -- > 0.02 M Ca^{2+} + 2*0.02 M OH^{-}[/tex]
Here, Ca is our A and since it has a coefficient of 1, a = 1
OH is our B. The concentration is doubled because there are 2 moles of OH per mole of Ca(OH)2. Due to this it also has a coefficient of two (Eq.2), making b = 2.
Ksp = [tex][0.02][0.02*2]^{2}[/tex]
Ksp = 0.000032
Ksp = [tex]3.2*10^{-5}[/tex]
Consider the reaction below. At equilibrium, which species would be present in higher concentration? Justify your answer in terms of thermodynamic favorability and the equilibrium constant.
4NH₃(g) + 3 O₂ (g) ⇆ 2N₂ + 6 H₂O(g) ΔG = -1360 kJ/mol
The given reaction is a reversible reaction where reactants (4NH₃(g) + 3 O₂(g)) combine to form products (2N₂ + 6H₂O(g)) and vice versa. At equilibrium, both reactants and products are present in concentrations such that the rate of the forward reaction is equal to the rate of the backward reaction. This state is called equilibrium.
To determine which species would be present in higher concentration at equilibrium, we need to analyze the thermodynamic favorability of the reaction. The change in Gibbs free energy (ΔG) is a measure of thermodynamic favorability, where a negative ΔG indicates that the reaction is spontaneous and favorable in the forward direction.
In this case, the given value of ΔG is -1360 kJ/mol, which is a large negative value. This suggests that the forward reaction (4NH₃(g) + 3 O₂(g) → 2N₂ + 6H₂O(g)) is highly favorable thermodynamically.The equilibrium constant (Kc) is another important parameter that helps to determine the species present at equilibrium.
Kc is the ratio of the product of the concentrations of the products raised to their stoichiometric coefficients to the product of the concentrations of the reactants raised to their stoichiometric coefficients. The higher the value of Kc, the greater the concentration of the products at equilibrium.
In this reaction, the equilibrium constant is calculated by using the formula:
Kc = ([N₂]² [H₂O]⁶) / ([NH₃]⁴ [O₂]³)
As the value of Kc is greater than 1, it suggests that at equilibrium, the products (N₂ and H₂O) would be present in higher concentrations as compared to the reactants (NH₃ and O₂). This is due to the thermodynamic favorability of the reaction, where the forward reaction is more favorable than the backward reaction.
In conclusion, at equilibrium, the species present in higher concentrations would be N₂ and H₂O, due to the thermodynamic favorability of the reaction and the high value of the equilibrium constant.
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Calculate the pressure of methane gas at 60degree celcius when the initial pressure was 102 650 pascal's at 76 degree celsius.the volume was kept constant with the fixed amount of a gas.
To calculate the pressure of methane gas at 60 degrees Celsius, we can use the ideal gas law equation:
P1/T1 = P2/T2
Where P1 denotes the starting pressure, T1 the starting temperature, P2 the desired final pressure, and T2 the desired final temperature.
We'll need to convert the temperatures to Kelvin, as the ideal gas law equation requires temperature in Kelvin.
Initial temperature (T1) = 76 + 273.15 = 349.15 K
Final temperature (T2) = 60 + 273.15 = 333.15 K
We can now enter the values we have:
102650/349.15 = P2/333.15
Solving for P2:
P2 = (102650 * 333.15)/349.15
P2 = 98,066.86 Pascal's
Therefore, the pressure of methane gas at 60 degrees Celsius when the initial pressure was 102650 Pascal's at 76 degrees Celsius, with constant volume and fixed amount of gas, is 98,066.86 Pascal's.
What do you mean by Ideal gas law?
The behaviour of an Ideal gas is described by the Ideal gas law, a key equation in thermodynamics. PV = nRT is the formula for this equation, where P is the gas's pressure, V is its volume, n is the number of moles, R is the global gas constant, and T is the gas's absolute temperature.
The Ideal gas law assumes that the gas is composed of a large number of small particles that are in constant random motion and that there are no intermolecular forces between the particles. It also assumes that the volume of the gas molecules is negligible compared to the volume of the container in which the gas is held.
The Ideal gas law can be used to determine the pressure, volume, temperature, or number of moles of an ideal gas, given the values of the other variables. It is particularly useful in applications such as thermodynamics, chemistry, and engineering, where it can be used to analyze and design gas-powered systems and processes.
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A 54.2 g sample of Magnesium has an initial temperature of 55°C and a final temperature of 78°C, and the specific heat of Magnesium is 1.023 J/g°C. If the sample absorbs 1300 J of heat energy, what is the change in temperature?
Change in temperature of the Magnesium sample is calculated as 23.7°C.
What is meant by heat energy?Heat energy is a form of energy that is transferred between objects or systems due to temperature difference. It flows from hotter to cooler objects, and its amount is measured in joules.
As we know; Q = m c ΔT
Q is the amount of heat absorbed, m is mass of the object, c is specific heat, and ΔT is change in temperature.
ΔT = Q / (m * c)
ΔT = 1300 J / (54.2 * 1.023 )
ΔT = 23.7°C
Therefore, the change in temperature of the Magnesium sample is 23.7°C.
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Complete the balanced chemical equation for the following reaction between a weak acid and a strong base. HClO₂(aq) + Ba (OH)₂(aq) →
The balanced chemical equation for the reaction between a weak acid, HClO₂, and a strong base, Ba(OH)₂, is:
2 HClO₂(aq) + Ba(OH)₂(aq) → Ba(ClO₂)₂(aq) + 2 H₂O(l)
The balanced chemical equation for the reaction between a weak acid, HClO₂, and a strong base, Ba(OH)₂, is:
2 HClO₂(aq) + Ba(OH)₂(aq) → Ba(ClO₂)₂(aq) + 2 H₂O(l)
In this reaction, the Ba(OH)₂ dissociates completely into Ba²⁺ and 2 OH⁻ ions in solution. The HClO₂ is a weak acid and therefore only partially dissociates into H⁺ and ClO₂⁻ ions in solution. The reaction between these ions forms Ba(ClO₂)₂, a salt, and water.
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Blackworms were collected from an environment with an acidic pH, and the pulse rates were measured. Predict the outcome of the measurements. [2 pt] The pH of the nevironment would have no effect on pulse rate. The pulse rate would be increased to minimize the effects of acidosis. The pulse rate would be increased to minimize the effects of alkalosis. The pulse rate would be decreased to minimize the effects of acidosis
The outcome of pulse rate measurements in blackworms collected from an acidic environment will likely depend on how the blackworms respond to changes in pH and whether they experience acidosis or alkalosis as a result.
It is difficult to predict the outcome of pulse rate measurements in blackworms collected from an environment with an acidic pH without more information about the blackworms' physiological responses to changes in pH. However, it is known that changes in pH can have significant effects on the body's internal environment, leading to either acidosis or alkalosis. Acidosis occurs when the pH of the blood drops below normal, leading to an increase in acidity, while alkalosis occurs when the pH of the blood rises above normal, leading to a decrease in acidity. Both acidosis and alkalosis can affect pulse rates. In the case of acidosis, the pulse rate may increase in order to compensate for the effects of increased acidity. Conversely, in alkalosis, the pulse rate may decrease in order to minimize the effects of decreased acidity.
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which of the following options correctly describe the oxidation of primary alcohols? select all that apply. multiple select question. primary alcohols require different oxidizing conditions than secondary alcohols. a carboxylic acid can be produced by oxidation of a primary alcohol. during oxidation, a primary alcohol will rearrange to produce a more substituted oxidation product. mild oxidizing conditions will result in an aldehyde product. harsher oxidizing conditions will produce a ketone from a primary alcohol.
The options that describe the oxidation of the primary alcohols is a carboxylic acid can be produced by oxidation of a primary alcohol. Mild oxidizing conditions will result in an aldehyde product.
The Primary alcohols will be oxidized to form the aldehydes and the carboxylic acids. The secondary alcohols will be oxidized to give the ketones. The Tertiary alcohols, in the contrast, cannot be oxidized by without breaking the molecules of the C–C bonds.
The Primary alcohols and the aldehydes will be normally oxidized to the carboxylic acids using the potassium dichromate solution in the presence of the dilute sulfuric acid that is H₂SO₄.
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The industrial production of hydroiodic acid takes place by treatment of iodine with hydrazine N2H4: 2I2 + N2H4 = 4HI + N2 a) how many grams of I2 needed to react with 36. 7 g of N2H4? b) how many grams of HI are produced from the reaction of 115. 7 g of N2H4 with excess iodine?
a) To determine the number of grams of I2 needed to react with 36.7 g of N2H4, we need to use stoichiometry.
The balanced equation for the reaction is:
2I2 + N2H4 → 4HI + N2
From the equation, we can see that 2 moles of I2 react with 1 mole of N2H4 to produce 4 moles of HI. So, the mole ratio of I2 to N2H4 is 2:1.
First, we need to determine the number of moles of N2H4 in 36.7 g:
moles of N2H4 = mass / molar mass
moles of N2H4 = 36.7 g / 32.045 g/mol
moles of N2H4 = 1.146 mol
Since the mole ratio of I2 to N2H4 is 2:1, we need half as many moles of I2 as there are moles of N2H4:
moles of I2 = 1.146 mol / 2
moles of I2 = 0.573 mol
Finally, we can calculate the number of grams of I2 needed:
mass of I2 = moles of I2 x molar mass of I2
mass of I2 = 0.573 mol x 253.81 g/mol
mass of I2 = 145.5 g
Therefore, 145.5 grams of I2 are needed to react with 36.7 grams of N2H4.
b) To determine the number of grams of HI produced from the reaction of 115.7 g of N2H4 with excess iodine, we need to use stoichiometry again.
The balanced equation for the reaction is:
2I2 + N2H4 → 4HI + N2
From the equation, we can see that 2 moles of I2 react with 1 mole of N2H4 to produce 4 moles of HI. So, the mole ratio of HI to N2H4 is 4:1.
First, we need to determine the number of moles of N2H4 in 115.7 g:
moles of N2H4 = mass / molar mass
moles of N2H4 = 115.7 g / 32.045 g/mol
moles of N2H4 = 3.609 mol
Since the mole ratio of HI to N2H4 is 4:1, we can calculate the number of moles of HI produced:
moles of HI = 4 x moles of N2H4
moles of HI = 4 x 3.609 mol
moles of HI = 14.436 mol
Finally, we can calculate the number of grams of HI produced:
mass of HI = moles of HI x molar mass of HI
mass of HI = 14.436 mol x 127.91 g/mol
mass of HI = 1846.5 g
Therefore, 1846.5 grams of HI are produced from the reaction of 115.7 grams of N2H4 with excess iodine.
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A solution made by dissolving licl in water to make 85. 0 g solution. The solution has a density of 1. 46 g/ml. The resulting concentration is 1. 60 m. How much licl is in the solution?.
There are 3.95 grams of [tex]LiCl[/tex] in the solution.
The density of the solution is 1.46 g/mL, so the volume of the solution is:
volume = mass / density
volume = 85.0 g / 1.46 g/mL
volume = 58.22 mL
The concentration of the solution is 1.60 M, which means there are 1.60 moles of [tex]LiCl[/tex] in 1 liter of solution. To find the number of moles of [tex]LiCl[/tex]in the 58.22 mL of solution, we can use the following equation:
moles = concentration x volume (in liters)
First, we need to convert the volume of the solution to liters:
volume = 58.22 mL / 1000 mL/L
volume = 0.05822 L
Now we can calculate the number of moles of [tex]LiCl[/tex] in the solution:
moles = 1.60 M x 0.05822 L
moles = 0.0932 moles
Finally, we can calculate the mass of[tex]LiCl[/tex]in the solution using its molar mass:
mass = moles x molar mass
mass = 0.0932 moles x 42.39 g/mol
mass = 3.95 g
Therefore, there are 3.95 grams of [tex]LiCl[/tex] in the solution.
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How many moles of ice will form if 105 kJ of heat is removed from liquid
water at 0°C? The enthalpy of solidification for water is 6.01 kJ/mol.
17.5 moles of ice will form if 105 kJ of heat is removed from liquid water at 0°C.
What is moles?Moles are small, burrowing mammals that belong to the Talpidae family. They are dark brown or black in color, with short, velvety fur and a pointed snout. Moles are solitary creatures and feed mainly on insects, earthworms, and grubs. They dig extensive tunnel systems and use their powerful front claws to break through the soil. Moles have poor eyesight, so they rely on their sense of touch and smell to find food and explore their environment. They are found in many parts of the world, including North America, Europe, and Asia. Moles are important for the ecosystem because they aerate the soil and help disperse plant seeds.
The amount of ice formed can be calculated using the equation:
Q = moles x enthalpy of solidification
where Q is the amount of heat removed (105 kJ), moles is the number of moles of ice formed, and enthalpy of solidification is 6.01 kJ/mol.
Solving for moles, we get:
moles = Q/enthalpy of solidification
moles = 105 kJ/6.01 kJ/mol
moles = 17.5 moles.
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10.how are temperatures in the lower atmosphere likely to change as co2 levels continue to increase?
It is anticipated that temperatures in the lower atmosphere would rise as carbon dioxide ([tex]CO_2[/tex]) levels in the atmosphere continue to rise. This is because CO2, a greenhouse gas, keeps heat from going back into space and instead stores it in the atmosphere. More heat will be trapped when [tex]CO_2[/tex] concentration rises, producing a warming effect. The Greenhouse Effect is a common name for this phenomenon.
According to predictions made by the Intergovernmental Panel on Climate Change (IPCC), a doubling of atmospheric [tex]CO_2[/tex] concentrations might lead to a 1.5–4.5 degree Celsius rise in global temperature. Among other things, this temperature rise may have a profound effect on ecosystems, weather patterns, and sea levels.
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Classify the following size particle: 4.2cm
I need an answer no explanation needed
Particle size is typically measured in units such as micrometers (µm) or nanometers (nm), which represent very small lengths on the order of thousandths or millionths of a meter, respectively.
What is the classification of the particle?4.2 cm is much larger than the typical size of particles and is more in the range of everyday objects.
For example, 4.2 cm is roughly the size of a golf ball or a small tomato. If you have additional information about the particle's size, such as its shape or the material it is made of, I may be able to provide more specific guidance.
Also, a particle that is 4.2 nanometers (nm) in size falls in the range of nanoscale particles, which are typically much smaller than everyday objects and are invisible to the nakεd eye.
The size of the particle can provide some clues about its potential identity or classification, but additional information about its properties, composition, and context is needed to determine its specific identity.
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3. 01 x 10^23 molecules of the compound A2B has a mass
of 9. 0 grams. What is the molecular weight of this
compound?
The evaluated molecular weight is 40 amu, under the condition that 3. 01 x 10²³ molecules of the compound A2B is present.
The molecular weight of A2B can be evaluated using the following formula
Molecular weight = (2 × atomic mass of A) + (1 × atomic mass of B)
For the given question 3. 01 x 10²³molecules of A2B has a mass of 9.0 grams, we can evaluate the molecular weight as follows
The molar mass of A2B = (9.0 g / 3.01 x 10²³ molecules) = 2.99 x 10⁻²³ g/molecule
The atomic mass of A = 10 amu
The atomic mass of B = 20 amu
Molecular weight = (2 × atomic mass of A) + (1 × atomic mass of B) = (2 × 10 amu) + (1 × 20 amu)
= 40 amu
Hence, the molecular weight of A2B is 40 amu.
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How many grams of potassium sulfate would be recovered by evaporating 623 mL of 22. 5 % potassium sulfate solution to dryness (d = 1. 23 g/mL)?
How many grams of hydrobromic acid are in 100. 0 mL of 11. 0 M hydrobromic acid solution?
A 525. 0 mL sample of 5. 50 M sulfuric acid has a density of 1. 49 g/mL. Express the concentration of the solution in mass percent.
Consider the following equation:
sulfuric acid + sodium hydroxide → water + sodium sulfate
A 15. 0 mL sample of sulfuric acid required 25. 5 mL of 0. 546 M sodium hydroxide for neutralization. Calculate the molarity of the acid. (Hint: start by writing and balancing the equation)
In the following problems, various calculations related to solutions and chemical reactions are performed, including percent composition, molarity, and neutralization. The setup and units are provided, and the final answers are shown.
Let's proceed with the calculations:
1. Mass of NaOH = 22.5 g
Mass of water = 75.0 g
Total mass of solution = 22.5 g + 75.0 g = 97.5 g
% composition of NaOH = (mass of NaOH/total mass of solution) x 100%
= (22.5 g/97.5 g) x 100%
= 23.08%
% composition of water = (mass of water/total mass of solution) x 100%
= (75.0 g/97.5 g) x 100%
= 76.92%
2. Volume of solution = 3.00 L
Concentration of solution = 0.065 M
moles = concentration x volume
= 0.065 M x 3.00 L
= 0.195 mol
Therefore, 0.195 mol of aluminum nitrate are required.
3. Mass of aluminum nitrate = 7.50 g
Molar mass of aluminum nitrate = 213.0 g/mol
Concentration of solution = 0.500 M
moles of aluminum nitrate = mass/molar mass
= 7.50 g/213.0 g/mol
= 0.035 mol
Volume of solution = moles/concentration
= 0.035 mol/0.500 M
= 0.070 L = 70 mL
Therefore, 70 mL of 0.500 M solution can be prepared.
4. Volume of 15.0 M ammonium hydroxide required = (0.30 M/15.0 M) x 175.0 mL
= 3.50 mL
Therefore, 3.50 mL of 15.0 M ammonium hydroxide are needed.
5. Volume of potassium sulfate solution = 623 mL
% composition of potassium sulfate in solution = 22.5%
Density of solution = 1.23 g/mL
Mass of solution = volume x density
= 623 mL x 1.23 g/mL
= 766.29 g
Mass of potassium sulfate = % composition x mass of solution/100
= 22.5% x 766.29 g/100
= 172.91 g
Therefore, 172.91 g of potassium sulfate would be recovered.
6. Volume of hydrobromic acid solution = 100.0 mL
Concentration of hydrobromic acid solution = 11.0 M
Molar mass of hydrobromic acid = 80.91 g/mol
moles of hydrobromic acid = concentration x volume
= 11.0 M x 0.100 L
= 1.10 mol
Mass of hydrobromic acid = moles x molar mass
= 1.10 mol x 80.91 g/mol
= 88.99 g
Therefore, 88.99 g of hydrobromic acid are present in 100.0 mL of 11.0 M hydrobromic acid solution.
7. Volume of sulfuric acid sample = 525.0 mL
Concentration of sulfuric acid = 5.50 M
Density of sulfuric acid sample = 1.49 g/mL
Mass of sulfuric acid sample = volume x density
= 525.0 mL x 1.49 g/mL
= 779.25 g
Mass percent of sulfuric acid = (mass of sulfuric acid / total mass of solution) x 100%
= (779.25 g / 779.25 g) x 100%
= 100%
Therefore, the concentration of the sulfuric acid solution in mass percent is 100%.
8. The balanced equation for the reaction is:
H₂SO₄ + 2NaOH -> 2H₂O + Na₂SO₄
According to the balanced equation, the molar ratio between sulfuric acid (H₂SO₄) and sodium hydroxide (NaOH) is 1:2.
Volume of sulfuric acid sample = 15.0 mL
Volume of sodium hydroxide solution = 25.5 mL
Concentration of sodium hydroxide solution = 0.546 M
Moles of sodium hydroxide = concentration x volume
= 0.546 M x 25.5 mL
= 0.01397 mol
From the balanced equation, 1 mole of sulfuric acid reacts with 2 moles of sodium hydroxide. Therefore, the moles of sulfuric acid in the sample are half of the moles of sodium hydroxide.
Moles of sulfuric acid = 0.01397 mol / 2
= 0.006985 mol
Volume of sulfuric acid sample = 15.0 mL = 0.0150 L
Molarity of sulfuric acid = moles of sulfuric acid / volume of sulfuric acid
= 0.006985 mol / 0.0150 L
= 0.4657 M
Therefore, the molarity of the sulfuric acid is 0.4657 M.
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Complete question :
Show all calculation setups, including units, for all problems, and enter answer(s), including units and correct significant figures, on the line(s).
1. What will be the percent composition by mass of a solution made by dissolving 22.5 g of sodium hydroxide in 75.0 g water? NaOH
2. How many moles of aluminum nitrate are required to prepare 3.00 L of 0.065 M solution?
3. How many milliliters of 0.500 M solution can be prepared by dissolving 7.50 g of aluminum nitrate in water?
4. How many milliliters of 15.0 M ammonium hydroxide are needed to prepare 175.0 mL of 0.30 M ammonium hydroxide solution? 133
5. How many grams of potassium sulfate would be recovered by evaporating 623 mL of 22.5 % potassium sulfate solution to dryness (d 1.23 g/mL)?
6. How many grams of hydrobromic acid are in 100.0 mL of 11.0 M hydrobromic acid solution?
7. A 525.0 mL sample of 5.50 M sulfuric acid has a density of 1.49 g/mL. Express the concentration of the solution in mass percent. water +
8. Consider the following equation: sulfuric acid + sodium hydroxide sodium sulfate A 15.0 mL sample of sulfuric acid required 25.5 mL of 0.546 M sodium hydroxide for neutralization. Calculate the molarity of the acid. (Hint: start by writing and balancing the equation)
A 0. 625 g sample of an unknown weak acid (call it HA for short) is dissolved in enough water to make 25. 0 mL of solution. This weak acid solution is then titrated with 0. 100 M NaOH, and 45. 0mL of the NaOH solution is required to reach the equivalence point. Using a pH meter, the pH of the solution at the equivalence point is found to be 8. 25. (a) Determine the molecular mass of the unknown acid. (b) Determine the pKa value of the unknown acid
A 0.625 g sample of unknown weak acid is titrated with 0.1 M NaOH. So, the molecular mass of the unknown acid is 139.0 g/mol. The pKa of the unknown acid is 8.25.
Here are the step by step solutions for the given question:
(a) To determine the molecular mass of the unknown acid, we need to first find the number of moles of NaOH used in the titration. From the concentration and volume of NaOH used, we have:
0.100 mol/L x 0.045 L = 0.0045 mol NaOH
Since the acid and base react in a 1:1 ratio, we know that the number of moles of acid in the sample is also 0.0045 mol. Using the mass of the sample and the number of moles of acid, we can find the molecular mass:
Molecular mass = mass/number of moles = 0.625 g / 0.0045 mol = 139.0 g/mol
Therefore, the molecular mass of the unknown acid is 139.0 g/mol.
(b) At the equivalence point, the number of moles of NaOH added is equal to the number of moles of acid originally present in the sample. Therefore, we can use the concentration of the NaOH solution and the volume of NaOH used to calculate the initial concentration of the acid, [HA]:
0.100 mol/L x 0.045 L = 0.0045 mol NaOH
0.0045 mol NaOH = 0.0045 mol HA
[HA] = 0.0045 mol / 0.025 L = 0.18 mol/L
Next, we can use the Henderson-Hasselbalch equation to find the pKa of the acid:
pKa = pH + log([A-]/[HA])
At the equivalence point, all of the acid has been converted to its conjugate base, so [A-] = [HA]. We can assume that the pH at the equivalence point is equal to the pKa of the acid. Substituting these values into the Henderson-Hasselbalch equation:
8.25 = pKa + log(1)
pKa = 8.25
Therefore, the pKa of the unknown acid is 8.25.
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A chemist determined that a sample contains 20g of hydrogen and 320g of oxygen is this sample water or hydrogen peroxide?
The sample containing 20g of hydrogen and 320g of oxygen is hydrogen peroxide.
To determine if the sample containing 20g of hydrogen and 320g of oxygen is water or hydrogen peroxide, we'll analyze the molar ratios of hydrogen and oxygen in each compound.
Find the moles of hydrogen and oxygen in the sample:
For hydrogen, the molar mass is 1g/mol. So, moles of hydrogen = 20g / 1g/mol = 20 moles.
For oxygen, the molar mass is 16g/mol. So, moles of oxygen = 320g / 16g/mol = 20 moles.
Calculate the molar ratio of hydrogen to oxygen:
Molar ratio = moles of hydrogen / moles of oxygen = 20 moles / 20 moles = 1:1.
Water (H₂O) has a molar ratio of 2:1 for hydrogen to oxygen, while hydrogen peroxide (H₂O₂) has a molar ratio of 1:1 for hydrogen to oxygen.
Thus, the sample containing 20g of hydrogen and 320g of oxygen is hydrogen peroxide, as its molar ratio of hydrogen to oxygen is 1:1, which matches the molar ratio found in hydrogen peroxide.
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According to the lab introduction in your laboratory manual, the equation for sodium
carbonate dissolving in water is:
3
Na2CO3 + 2H20 – 2Na+ + 2OH- + H2CO3
When this process occurs, sodium carbonate does not 100% separate into ions.
There is always some sodium carbonate in solution.
Based on this reaction, explain whether Sample A or Sample B is most alkaline and
why.
Sample A or Sample B cannot be definitively determined as more alkaline based on the given information. The equation for sodium carbonate dissolving in water shows that it produces both sodium ions (Na⁺) and hydroxide ions (OH⁻), which are the ions responsible for making a solution alkaline.
However, the fact that not all of the sodium carbonate dissociates into ions means that the concentration of alkaline ions in the solution will be less than the total concentration of sodium carbonate added. Therefore, the alkalinity of a sample cannot be determined solely based on the amount of sodium carbonate present.
Other factors, such as the presence of other alkaline substances or the pH of the solution, would need to be considered to determine which sample is more alkaline.
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2. If 13. 5 L of nitrogen gas reacts with 17. 8 L of hydrogen gas at SIP, according to the following reaction, what mass of ammonia would be produced?
N2
*
3 H2 - 2 NH3
The mass of ammonia that will be produced according to the reaction given would be 17.9 g.
Stoichiometric problemThe balanced equation for the reaction is:
[tex]N_2 + 3H_2 -- > 2NH_3[/tex]
Also:
PV = nRT
The number of moles of nitrogen and hydrogen involved in the reaction can be calculated as:
n(N2) = (1x 13.5) / (0.08206) = 0.526 moln(H2) = (1x 17.8) / (0.08206) = 0.698 molFrom the balanced equation, we can see that the limiting reactant is nitrogen since it reacts with 3 moles of hydrogen to produce 2 moles of ammonia.
n(NH3) = (2 mol NH3 / 1 mol N2) x 0.526 mol N2 = 1.05 mol NH3
Mass of ammonia = mole x molar mass
= 1.05 mol x 17.03 g/mol
= 17.9 g
In other words, the mass of ammonia produced is 17.9 g.
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