QUESTION 1 Please answer the questions below completely. Show ALL work for credit. Give all answers in 3 significant figures. Please calculate molecular weight (mass) to two numbers after the decimal. You can use the f. button to build you equations. 1. Determine the theoretical yield of HCI if 60.0 g of BCI3 and 37.5 g of H20 are reacted according to the following balanced reaction. H20 is in excess. A possibly useful molar mass is BCI3 = 117.16 g/mol. BCI3(g) +3 H20(1) H3BO3(s) +3 HCI(g) 2. Calculate the percent yield if the actual yield is 37.1 g HCI. TTT Arial 3 (12pt) T-E 只i ン Words:0 Path: p

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QUESTION 1
Please answer the questions below completely. Show ALL work for credit. Give all answers in 3 significant figures. Please calculate
molecular weight (mass) to two numbers after the decimal. You can use the f button to build you equations.
1. Determine the theoretical yield of HCI if 60.0 g of BCI3 and 37.5 g of H20 are reacted according to the following balanced
reaction. H20 is in excess. A possibly useful molar mass is BCI3 = 117.16 g/mol.
BCI3(g) + 3 H20(1) → H3BO3(s) + 3 HCI(g)
2. Calculate the percent yield if the actual yield is 37.1 g HCI.
T TT Arial
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Transcribed Image Text:QUESTION 1 Please answer the questions below completely. Show ALL work for credit. Give all answers in 3 significant figures. Please calculate molecular weight (mass) to two numbers after the decimal. You can use the f button to build you equations. 1. Determine the theoretical yield of HCI if 60.0 g of BCI3 and 37.5 g of H20 are reacted according to the following balanced reaction. H20 is in excess. A possibly useful molar mass is BCI3 = 117.16 g/mol. BCI3(g) + 3 H20(1) → H3BO3(s) + 3 HCI(g) 2. Calculate the percent yield if the actual yield is 37.1 g HCI. T TT Arial 3 (12pt) ▼T-三 因i Y Words:0 Path: p Click Save and Submit to save and submit. Click Save All Answers to save all answers. Save All Answers DELL he prtsc F10 Esc F1 F2 F3 F4 F5 F6 F7 F8 F9
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