A New Process for Efficient Recovery of Rhodium from Spent Carbonyl Rhodium Catalyst by Microreactor

Author:

Guo Lei123,Niu Yifan123,Hu Jianjun4,Ju Shaohua1235,Gu Yongwan6,Tan Wenjin4

Affiliation:

1. Faculty of Metallurgical and Energy Engineering, Kunming University of Science and Technology, Kunming 650093, China

2. Key Laboratory of Unconventional Metallurgy, Ministry of Education, Kunming 650093, China

3. National Local Joint Laboratory of Engineering Application of Microwave Energy and Equipment Technology, Kunming 650093, China

4. Guiyan Group (Yimen) Co., Ltd., Yuxi 651100, China

5. State Key Laboratory of Complex Nonferrous Metal Resources Clean Utilization, Kunming 650093, China

6. Kunming Institute of Precious Metals, Kunming 650106, China

Abstract

Triphenylphosphine acetylacetone carbonyl rhodium (ROPAC) is an important catalyst in the petrochemical industry, and its deactivated waste catalyst holds significant value for recovery. This study focuses on the existing forms of rhodium (Rh) in waste catalysts and the current status of traditional processes. A green, efficient, and continuous recovery technique was developed using a sealed stainless steel microchannel reactor. The influence of reaction temperature, reaction time, and phase ratio on the Rh recovery rate was investigated, and the process parameters were optimized using response surface methodology (RSM). The results indicate that the magnitude of the impact on the Rh recovery rate follows the order: reaction temperature > reaction time > phase ratio. The optimized process parameters were determined as follows: a reaction time of 29 min, a reaction temperature of 110 °C, and a phase ratio of 1:1, with a corresponding maximum recovery rate of Rh of 66.06%. Furthermore, secondary treatment was performed on the organic phase after primary recovery using the same process conditions, resulting in an overall Rh recovery rate of 95.6%, indicating satisfactory recovery efficiency. Moreover, the application of FTIR and ICP-OES analysis provided definitive evidence that the oxidative dissociation of the rhodium-phosphine chemical bond by H2O2 within ROPAC leads to the conversion of Rh+ into Rh3+. Subsequently, Rh forms chloroaquorhodium (III) complexes that enter the aqueous phase, enabling effective recovery of Rh.

Funder

National Natural Science Foundation of China

Publisher

MDPI AG

Subject

General Materials Science

Reference42 articles.

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2. Research progress in rhodium recovery process from spent precious metal catalysts;Li;Petrochem. Ind. Technol.,2020

3. Study on preparing high-purity rhodium chloride by using digestion solution produced in dispelling waste catalyst containing rhodium from butyl octanol unit;Jiang;Inorg. Chem. Ind.,2017

4. Analysis of development status and market supply and demand of butanol and octanol industry;Shi;China Petrochem. Ind. Obs.,2019

5. Study on preparation process of rhodium trichloride by roasting recovery technology from waste rhodium solution of carbonyl synthesis;Wang;Inorg. Chem. Ind.,2023

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