Accidental Reduction of Cr6+ to Cr3+ with HCl

An aqueous solution of NaClO, Na₂CrO₄, and NaCl in water, in unknown proportions, was treated with a quantity of 30% HCl that may have been up to a 60% molar excess based on the following expected reactions:

Na₂CrO₄ + 2HCl -> H2O + 2NaCl +Na₂Cr₂O₇

NaClO + 2HCl -> Cl₂ + H₂O +NaCl

The solution was initially an amber / orange colour, and darkened over the course of 2 hours at room temperature to dark brown / orange, with a hint of green that I thought resulted from iron impurities in the technical grade HCl. The solution was then boiled to 10% its original volume to remove the HCl and most of the water, whereupon I was left with a solution that looked distinctly like CrCl₃, and produced no precipitate when treated with concentrated KCl solution (if the solution contained Na₂Cr₂O₇, a K₂Cr₂O₇ precipitate would be expected).

The initial solution was produced by an incomplete reaction between 11% NaClO bleach and anhydrous Cr₂(CO₃₃, which seems to require a great excess of bleach (much more than 100% excess, at least). Can anyone shed some light on what happened here? I wouldn't have expected the Cr⁶⁺ to be reduced under these conditions.

Quote: Originally posted by StealthMode

The initial solution was produced by an incomplete reaction between 11% NaClO bleach and anhydrous Cr<sub>2</sub>(CO<sub>3</sub><sub>3</sub>,

There's no such thing as 'anhydrous Cr₂(CO₃₃'. From Cr³⁺(aq), soluble carbonate and bicarbonates precipitate hydrated Cr(OH)₃, not Cr(+3) carbonate.

This explains, in simple terms, why:

http://www.chemguide.co.uk/inorganic/complexions/aquaco3.htm...

[Edited on 2-5-2016 by blogfast25]