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Updated: Aug 6, 2026

Development and Validation of Chromium Getters for Solid Oxide Fuel Cell Power Systems
Published on: May 26, 2019
Sulfonyl-Functionalized Materials Enable In Situ Purification and Circular Resource Recovery from Chromium
Zhinan Dai1, Zhiyuan Su1, Kexin Wei1
1State Key Laboratory of Green Papermaking and Resource Recycling, School of Environmental Science and Engineering, Shanghai Jiao Tong University, Shanghai200240, PR China.
Abstract:
Chromium electroplating is widely used in manufacturing but generates large volumes of highly toxic Cr(VI)-contaminated aging solutions, posing significant environmental and energy challenges. Current treatment methods mainly rely on end-of-pipe processes that consume large amounts of chemicals, generate secondary waste, and fail to recover resources. Here, we report a materials-enabled strategy for sustainable management of electroplating aging solutions through an integrated system for online separation and in situ reuse. A sulfonyl-functionalized resin was engineered to achieve exceptional oxidative stability under strongly acidic, Cr(VI)-rich conditions. Sulfonyl-induced electronic modulation, together with a rigid framework, effectively suppresses polymer backbone degradation while maintaining stable ion-exchange performance. Coupling ion exchange with diffusion dialysis and electro-oxidation enables simultaneous impurity removal, sulfuric acid recovery, and chromium regeneration, establishing a closed-loop resource recovery pathway. Industrial-scale trials demonstrate that the regenerated electrolyte can be directly reused for electroplating, delivering coating performance comparable to fresh baths while reducing energy consumption by 35% and improving corrosion resistance by 28.4% relative to untreated solutions. Life-cycle and techno-economic analyses further confirm substantial environmental and economic benefits, reducing operating costs to 2.1% of conventional treatment. These findings provide a scalable pathway for transforming hazardous electroplating wastes into recyclable resources, advancing circular manufacturing and zero-liquid-discharge electroplating.
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