Interpretation:
Among the given percent yields in the problem statement, the one is obtained due to incorrect experimental data has to be chosen.
Concept Introduction:
In a
Theoretical yield of a chemical reaction is the maximum amount of the product that can be obtained from the given amount of reactants provided there is no loss or inefficiencies occur. The actual yield of the chemical reaction is the experimental yield that is obtained. Actual yield of the product is always lesser than the theoretical yield. For this, there are two reasons. They are,
- In mechanical process, some of the product is lost. Mechanical process involves the transfer of materials from a container to another container.
- Unwanted side reactions occur in the actual chemical reaction due to impurities present. These are not considered in theoretical yield.
Actual yield is the amount of product that is got from a chemical reaction. The actual yield has to be measured and not calculated.
Percent yield is the term that is used to tell about the product loss. It is the ratio of the actual amount of product that is obtained in a chemical reaction to the theoretical yield multiplied by 100 to give percent. Mathematical equation for percent yield is given as,
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Chapter 6 Solutions
Bundle: General, Organic, and Biological Chemistry, 7th + OWLv2 Quick Prep for General Chemistry, 4 terms (24 months) Printed Access Card
- Data Trial 1 Trial 2 Mass of empty crucible with lid 26.698g 26.687g Mass of Mg metal, crucible, and lid 27.060g 27.046g Mass of MgO, crucible, and lid 27.291g 27.273g Determine the percent yield of MgO for your experiment for each trial. Trial 1:98.8% Trial 2:98.3% (Just write out how you got both percent yields and follow signifigant figure rules)arrow_forwardAnswer 1 and 2 PROBLEM SOLVING. Show all pertinent computations Express final answer up to the fourth decimal place. 1.ln the preparation of aspirin, 6.0 grams of salicylic acid was made to react with acetic anhydride gnbxdride forming 4 grams of aspirin. Calculate the % yield of aspirin. 2. calculate the amount of sodium salt of aspirin obtained from the preparation.arrow_forwardQUESTION 3 After balancing the following chemical equation, what are the coefficient FeCl2 + NazPO4 - Fe3(РОд)2 + NaCl O A. 3,2,1,6 ОВ. 3,1,1,3 O C. 3,1,1,6 O D. 6,2,2,6 O E. 3,2,1,3 QUESTION 4arrow_forward
- Data Trial 1 Trial 2 Mass of empty crucible with lid 26.698g 26.687g Mass of Mg metal, crucible, and lid 27.060g 27.046g Mass of MgO, crucible, and lid 27.291g 27.273g Determine the average percent yield of MgO for the two trials. ( I average the percent yield of the two trials) 98.55% (Just write out how you got it)arrow_forwardQuestion 1 Homework Complete the mass data table given below. B I X, x' n Undo C Start Over O Row Column Table Title Mass data table Column 1 Column 2 Column 3 Data set name Trial 1 Trial 2 Mass of empty crucible and cover 25.165 g 24.931 g Mass of cover 10.731 g 10.278 g Mass of magnesium ribbon 0.350 g 0.375 g Mass of magnesium ribbon, crucible, 14.784 g 15.028 g Mass of magnesium ribbon, crucible, 25.745 g 25.522 g mass of product 0.580 g 0.591 g mass of oxygen 0.230 g 0.216 g Answered A Resubmit Question 2 Homework Calculate the Empirical formula for Trial 1 by completing the table given below. B I X, x' 2- n Undo C Start Over Column Row Table Title Calculate the Empirical formula for Trial 1 Column 1 Column 2 Column 3 Column 4 Column 5 Trial 1 grams Molar mass moles molar ratio Mgarrow_forwardReview | Constants I Periodic Table How many moles of methane are produced when 85.1 moles of carbon dioxide gas react with excess hydrogen gas? Express your answer with the appropriate units. ► View Available Hint(s) Value Submit HÅ Part B μA Units How many moles of hydrogen gas would be needed to react with excess carbon dioxide to produce 99.1 moles of water vapor? Express your answer with the appropriate units. ► View Available Hint(s) Value Units ? P Pearson ? n Education Inc. All rights reserved. | Terms of Use | Privacy Policy. | Permissions | Contact Us |arrow_forward
- Gaseous butane (CH,(CH reacts with gaseous oxygen gas (0,) to produce gaseous carbon dioxide (CO,) and gaseous water (H,0). What is the theoretical yield of carbon dioxide formed from the reaction of 1.7 g of butane and 4.7 g of oxygen gas? g Round your answer to 2 significant figures. Explanation Check 2021 McGraw HilLLLC AILRights Reserved Terms of UUse Privacy Center Accessibility étv MacBook Air DII DO 10 esc FB F9 F10 F7 F3 @ %23 $ & 7 8 LOarrow_forwardd%=867069 G SYSTEM (ACADEMIC) A compound is made by carbon, hydrogena and nitrogen and 1 g of this compound contains 91.5 mg of hydrogen and 424 mg of nitrogen. What is the empirical formula? (write the formula with elements in this sequence HNO) Answer: H3NO Balance the following equation Sn + H2SO4 SNSO4 SO2 + H20 a. 12 1 12 b. 1 12 21arrow_forwardA student reacts benzene, C6H6, with bromine, Br2, to prepare bromobenzene, C6H5Br, and HBr. C6H6 + Br2 --> C6H5Br + HBr What is the theoretical yield of bromobenzene in this reaction when 26.4 g of benzene reacts with 73.6 g of bromine? Answer: ___________ grams Which chemical is the limiting reactant? If the actual yield of bromobenzene was 33.2 g, what was the percent yield? Answer: ____________ %arrow_forward
- DATE How produced Mng grams of KN03 will be to with' 1.2828 mol of K8rOg? KBFD3 + 5 kBr + GHN03-76KNO3+ 3Brz t 3 H20 Check if its balanced and if not balanced it. a l167.33 g 2334-660 a 1413.32 a 778-22garrow_forwardReview I Constants I Perioc Phosphorus is obtained primarily from ores containing calcium phosphate. Part A calcium phosphate, what minimum mass of the ore must be processed to obtain 1.00 kg of phosphorus? If a particular ore contains 59.0 Express your answer with the appropriate units. ? HA Value Units m = Request Answer Submitarrow_forwardCorrect answer is e. Can you please show me how?arrow_forward
- General, Organic, and Biological ChemistryChemistryISBN:9781285853918Author:H. Stephen StokerPublisher:Cengage Learning