Homework Answers
a) The balanced equation will be
b)
Molar Mass of Al(OH)3 = 27+ 3 * (16+1) g/mol =78 g/mol
Mass of Aluminum in 1 mol Al(OH)3 = 27 g
% of Aluminum = Mass of Aluminum/ Mass of Al(OH)3 * 100 =27/78*100 =34.62 %
c)
Molar Mass of Al2S3 = 150.158 g/mol
Moles of Al2S3= Mass/Molar Mass = 316.0/150.158= 2.104 moles
Molar Mass of H2O = 18.0 g/mol
Moles of H2O = Mass/Molar Mass =493/18= 27.39 moles
1 mole of Al2S3 needs 6 moles water. Thus, 2.104 moles Al2S3 needs 2.104 *3 = 12.624 moles water. But water is 27.39 moles.
Thus, limiting reagent is Al2S3 and excess reagent is water.
d)
i)
Moles of water reacted = 12.624moles
Mass of water reacted = 12.624 * 18 g = 227.232 g
Mass of Water left = Total Mass - Mass reacted = 493 g- 227.232 g= 265.768 g = 266 g (approx)
Moles of Water left = Mass left/ Molar Mass = 227.232/18 mol = 14.76 mol = 14.8 mol (approx)
ii)
Moles of Al(OH)3 = 2 * Moles of Al2S = 2* 2.104 mol = 4.208 mol = 4.21 mol (approx)
Mass of Al(OH)3= Moles * Molar Mass = 4.208 * 150.158 g = 631.9 g (approx)
iii)
Moles of H2S = 3 * Moles of Al2S = 3* 2.104 mol = 6.312 mol = 6.31 mol (approx)
Molar Mass of H2S = 34.1 g/mol
Mass of H2S= Moles * Molar Mass = 6.312 * 34.1 g = 215 .2 g (approx)
iv)
Molecules of H2S = Moles * Avogadro's Constant = 6.31 * 6.022 *1023= 3.80*1024 molecules
v)
27 g Al = 1 mol Aluminum
1 mol Aluminum is present in 1 mol Al(OH)3
Thus, 1 mol Al(OH)3 was formed. But expected Yield was 4.21 mol
Thus % Yield = Actual Yield/Expected Yield * 100 = 1/4.21*100 = 23.75 %
Add Answer to:
please help with all questions! Fall 2109 CHE 151-01 Exam 2 Chapter 4-6 Question 5 Question 6 (21 Points) Al2S3 + H2...
Consider the reaction below Al2S3(s) + H2O(l) → Al(OH)3(s) + H2S(g) If 15.0g of aluminum sulfide...
Consider the reaction below Al2S3(s) + H2O(l) → Al(OH)3(s) + H2S(g) If 15.0g of aluminum sulfide and 10.0g of water are allowed to react as above, and assuming a complete reaction a. by calculation, find out which is the limiting reagent. b. calculate the maximum mass of H2S which can be formed from these reagents. c. calculate the mass of excess reagent remaining after the reaction is complete.
CHE 151-01 Exam 2 Chapter 4-6 Fall 2109 Question 9 (18 Points; 3 Points Each) 1....
CHE 151-01 Exam 2 Chapter 4-6 Fall 2109 Question 9 (18 Points; 3 Points Each) 1. Predict the products of the single and double displacement reactions below. Make sure your answers are balanced. 2. For double displacement reactions that occur, be sure to write out the lonic and net ionic equations. 3. If a reaction does not occur, write, no reaction Zn(s) + AgNO3(aq) ----> NaCl(aq) + AgNO3(aq) ---> Ag(s) + KNO3(aq) ----> Pb(NO3)2 (aq) + K-SO4 (aq) ----> Li(s)...
Worksheet for quiz 2 (chapters 2 and 3) 1. (3 points) Calculate the maximum number of...
Worksheet for quiz 2 (chapters 2 and 3) 1. (3 points) Calculate the maximum number of moles and grams of H2S that can form when 158 g of aluminum sulfide reacts with 131 g of water: ALS; + H2O + Al(OH)3 + H2S (unbalanced] How many grams of the excess reactant remain?
any help? thanks EXAM #2 2. 20.0 g of AlzS3 and 20.0 g of H20 are reacted according to the following reaction: Al S...
any help?
thanks
EXAM #2 2. 20.0 g of AlzS3 and 20.0 g of H20 are reacted according to the following reaction: Al S; (s) + 6H20 (1) ► 2 Al(OH)3 (s) + 3 H2S (g) A. Determine the percent yield of the reaction if 17.5g Al(OH)3 are actually produced in this reaction. (8 pts) B. What mass of the excess reactant remains unused after the reaction in complete? (Bonus = 4 points)
2 attempts left Check my work Be sure to answer all parts. Calculate the maximum numbers...
2 attempts left Check my work Be sure to answer all parts. Calculate the maximum numbers of moles and grams of HS that can form when 167.3 g of aluminum sulfide reacts with 143.0 g of water: Al,S3 + H,0 - Al(OH)3 + H2S (unbalanced) 3.34 14,5 133.9 XL, What mass of the excess reactant remains? 41.31 Xxcess reactant
questions 4 through 8 use the following reaction between Aluminum and hydrochloric acid 2 Al(s) +...
questions 4 through 8 use the following reaction between Aluminum and hydrochloric acid 2 Al(s) + 6 HCI (aq) → 2 AICI: (aq) + 3 H2(g) When 3.95 moles aluminum reacts with excess hydrochloric acid how many moles of hydrogen gas form? When 10.6 moles hydrochloric acid reacts with excess aluminum how many moles of hydrogen gas form? When 3.95 moles aluminum reacts with 10.6 moles hydrochloric acid how many moles of hydrogen gas form? What is the theoretical yield...
hi! can you please help me figure out part C and D please? I re-did my work on part A, but don't know how to do part C...
hi! can you please help me figure out part C and D please? I
re-did my work on part A, but don't know how to do part C and D.
Thank you so much :)
H23 - 1.00794 (2) + 32.066 = 34.08188 Alz S3 > 26.981538 (2) + 32.066(3) = 150.161076 PART II: PROBLEMS: Give a complete solution to each problem. SHOW YOUR WORK! Follow proper procedures concerning units and sig figs. Point values given. 6. Consider this unbalanced...
lab help please, ive answered a few questions need help on the rest 4. Consider the...
lab help please, ive answered a few questions need help on the
rest
4. Consider the following problem and answer each question below to help you answer the overall questions posed here. This question is based on the reaction that you wrote in Question 3. A chemist allows 85.4 g of iron (II) chloride to react with 49.8g of hydrogen sulfide. How many grams of hydrochloric acid could be produced? How many moles of iron (II) chloride are present in...
answer all questions ral Chemistry Concept 5 pts Question 1 Balance the chemical equation shown below,...
answer all questions
ral Chemistry Concept 5 pts Question 1 Balance the chemical equation shown below, Indicate the stoichiometric coefficients for the reaction. Do not leave answer spaces blank if the coefficient is one (1). AIBrg(aq)+ HBr(aq)- Al(s)+ H2(g) The balanced equation will then be used in the following two questions. 5 pts Question 2 Using the balanced chemical equation from the previous question, how many moles of H2(g) will be formed from 6.24 moles of HBr. Your answer will...
question has 3 parts please help. due tonight 6. The following questions (parts A, B and...
question has 3 parts please help. due tonight
6. The following questions (parts A, B and C) are unrelated to each other and are based on the following reaction. 2Al(s) + 3Cl2(8) ► 2A1CH() Al Determine the limiting reactant when 56.2 grams of Al (molar mass 27.0 g/mol) are reacted with 198 grams of Cl2 (molar mass = 70.9 g/mol). 56.28 2mol = 4.16 MOLAI (27.08 not correct method 198 get xml) . 5.59 MOL CIL Al IS LIMITING REACTANT...
CHE 151-01 Exam 2 Chapter 4-6 Fall 2109 Question 9 (18 Points; 3 Points Each) 1. Predict the products of the single and double displacement reactions below. Make sure your answers are balanced. 2. For double displacement reactions that occur, be sure to write out the lonic and net ionic equations. 3. If a reaction does not occur, write, no reaction Zn(s) + AgNO3(aq) ----> NaCl(aq) + AgNO3(aq) ---> Ag(s) + KNO3(aq) ----> Pb(NO3)2 (aq) + K-SO4 (aq) ----> Li(s)...
Worksheet for quiz 2 (chapters 2 and 3) 1. (3 points) Calculate the maximum number of moles and grams of H2S that can form when 158 g of aluminum sulfide reacts with 131 g of water: ALS; + H2O + Al(OH)3 + H2S (unbalanced] How many grams of the excess reactant remain?
any help?
thanks
EXAM #2 2. 20.0 g of AlzS3 and 20.0 g of H20 are reacted according to the following reaction: Al S; (s) + 6H20 (1) ► 2 Al(OH)3 (s) + 3 H2S (g) A. Determine the percent yield of the reaction if 17.5g Al(OH)3 are actually produced in this reaction. (8 pts) B. What mass of the excess reactant remains unused after the reaction in complete? (Bonus = 4 points)
2 attempts left Check my work Be sure to answer all parts. Calculate the maximum numbers of moles and grams of HS that can form when 167.3 g of aluminum sulfide reacts with 143.0 g of water: Al,S3 + H,0 - Al(OH)3 + H2S (unbalanced) 3.34 14,5 133.9 XL, What mass of the excess reactant remains? 41.31 Xxcess reactant
questions 4 through 8 use the following reaction between Aluminum and hydrochloric acid 2 Al(s) + 6 HCI (aq) → 2 AICI: (aq) + 3 H2(g) When 3.95 moles aluminum reacts with excess hydrochloric acid how many moles of hydrogen gas form? When 10.6 moles hydrochloric acid reacts with excess aluminum how many moles of hydrogen gas form? When 3.95 moles aluminum reacts with 10.6 moles hydrochloric acid how many moles of hydrogen gas form? What is the theoretical yield...
hi! can you please help me figure out part C and D please? I
re-did my work on part A, but don't know how to do part C and D.
Thank you so much :)
H23 - 1.00794 (2) + 32.066 = 34.08188 Alz S3 > 26.981538 (2) + 32.066(3) = 150.161076 PART II: PROBLEMS: Give a complete solution to each problem. SHOW YOUR WORK! Follow proper procedures concerning units and sig figs. Point values given. 6. Consider this unbalanced...
lab help please, ive answered a few questions need help on the
rest
4. Consider the following problem and answer each question below to help you answer the overall questions posed here. This question is based on the reaction that you wrote in Question 3. A chemist allows 85.4 g of iron (II) chloride to react with 49.8g of hydrogen sulfide. How many grams of hydrochloric acid could be produced? How many moles of iron (II) chloride are present in...
answer all questions
ral Chemistry Concept 5 pts Question 1 Balance the chemical equation shown below, Indicate the stoichiometric coefficients for the reaction. Do not leave answer spaces blank if the coefficient is one (1). AIBrg(aq)+ HBr(aq)- Al(s)+ H2(g) The balanced equation will then be used in the following two questions. 5 pts Question 2 Using the balanced chemical equation from the previous question, how many moles of H2(g) will be formed from 6.24 moles of HBr. Your answer will...
question has 3 parts please help. due tonight
6. The following questions (parts A, B and C) are unrelated to each other and are based on the following reaction. 2Al(s) + 3Cl2(8) ► 2A1CH() Al Determine the limiting reactant when 56.2 grams of Al (molar mass 27.0 g/mol) are reacted with 198 grams of Cl2 (molar mass = 70.9 g/mol). 56.28 2mol = 4.16 MOLAI (27.08 not correct method 198 get xml) . 5.59 MOL CIL Al IS LIMITING REACTANT...
Most questions answered within 3 hours.
-
The Problem: The Case of the Harmonizing Vacations
Your CEO is exploring partnering with a European...
asked 2 minutes ago -
A chemical equation is balanced by adding coefficients in front
of some formulas so that the...
asked 51 seconds ago -
From the literature (reference your sources): What are the
lattice parameters of calcite and aragonite? Why...
asked 41 minutes ago -
Your system is rejecting the question am asking which is
preceded by a case study. It...
asked 45 minutes ago -
3. On January 2, 2000, Larry creates a trust with himself as
trustee. Larry as trustee...
asked 42 minutes ago -
A member of the volleyball team spikes the ball. During this
process, she changes the velocity...
asked 49 minutes ago -
Are adult gamers less likely to use a gaming console (Xbox,
PlayStation, Wii, etc...) than teen...
asked 1 hour ago -
The University of
Texas recently reported that 43% of college students aged 18-24
would spend their...
asked 1 hour ago -
The length of stay at a specific emergency department in
Phoenix, Arizona, in 2009 had a...
asked 1 hour ago -
. Please give the mechanism for this type of problem. Step by
Step
The toxin that...
asked 1 hour ago -
If you have a 1M stock solution and you want to dilute 1 :10
with water,...
asked 1 hour ago -
In a load instruction, the effective address is obtained by
A) Retriving the address from a...
asked 1 hour ago