What is the Percent Oxalic Acid Dihydrate in an Unknown Sample?

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Discussion Overview

The discussion revolves around determining the percent composition of oxalic acid dihydrate in an unknown sample through titration with NaOH. Participants explore stoichiometric calculations related to the titration process and clarify the acid's properties, including its classification as a diprotic acid.

Discussion Character

  • Homework-related
  • Technical explanation
  • Conceptual clarification
  • Debate/contested

Main Points Raised

  • One participant presents a titration problem involving an unknown sample of oxalic acid dihydrate and provides calculations for determining its percentage in the sample.
  • Another participant questions the accuracy of the stoichiometric reasoning, specifically whether oxalic acid is monoprotic.
  • Further responses clarify that oxalic acid is diprotic, requiring two moles of NaOH for neutralization, contrasting it with monoprotic acids.
  • Participants discuss the implications of the diprotic nature of oxalic acid on the stoichiometry of the titration.

Areas of Agreement / Disagreement

There is no consensus on the initial calculations presented, as participants challenge the understanding of the stoichiometry involved. The classification of oxalic acid as diprotic is agreed upon, but the implications for the calculations remain debated.

Contextual Notes

Participants express uncertainty regarding the terminology and concepts related to acid classification, which may affect their understanding of the stoichiometric calculations. The discussion does not resolve the correctness of the initial calculations.

Who May Find This Useful

Students studying chemistry, particularly those focusing on acid-base titration and stoichiometry, may find this discussion relevant.

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Homework Statement


You are given an impure sample of oxalic acid dihydrate (MW=126.068 g/mole) and asked to determine the percent of oxalic acid dihydrate present in the sample. You place 0.110 grams of the unknown sample in an Erlenmeyer flask and dissolve it in distilled water. Titration with 0.140 M standardized NaOH solution requires 10.10 mLs to reach the titration endpoint. What is the percent of oxalic acid dihydrate in the sample?2. 0.121 grams of oxalic acid dihydrate (MW=126.068 g/mole) is dissolved in water in an Erlenmeyer flask. Remember that each mole of oxalic acid dissolved in water results in 2 moles of hydronium ion so it takes 2 moles of NaOH to neutralize one mole of oxalic acid. It requires 14.22 mLs of your prepared sodium hydroxide solution to reach the endpoint of the titration. What is the molarity of your NaOH solution?

I need to know if this is right at my attemps.

Homework Equations



stochiometry

The Attempt at a Solution



attempt for number 1: (10.10ml)*(1l/1000ml)*(0.140 moles of NaOH/1L)= 1.41*10^-3 moles of Naoh
(0.110 g of oxidic acid)*(1 mole oxidic acid/126.068 g)=8.72*10^-4 MOLE OF OXIDIC ACID
the percetage of oxidic acid, which is what we are looking for i think is 8.72*10^-4moles of oxicid/1.40*10^-3 moles of naOH times 100=61.8 % of oxidic acid

Attempt for number 2: 0.121 g of H2C2O4 *1 mole H2C2O4/126.063 g of H2C2O4=9.59*10^-4 then, 9.59*10^-4 moles of H2C2O4*2moles of NaOH/1 mole of H2C2O4= 1.919*10^-3 moles of NaOH
 
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You should be more careful with your 'stochiometry' (stoichiometry). Is oxalic acid monoprotic?
 
What do you mean by monoprotic?? never heard of this before. hahaha! All i know is that oxalic acid reacts with 2 moles of NaOH to neutralize the concentration.
 
Yeah, but if it takes two moles of NaOH to neutralize only one mole of oxalic acid...
 
then what does that mean, that is monoprotic??
 
HA <-> H+ + A- - monoprotic (like HCl, or HNO3).

H2A <-> 2H+ + A2- - diprotic (like oxalic, or H2SO4); note that dissociation is in reality stepwise.

Triprotic (tetra...) left as an exercise for the reader.
 

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