Selective selenium separation against arsenic coprecipitation and gradient recovery of minor metals from arsenic-selenium alloy waste

Minor metal-doped arsenic-selenium (As–Se) alloy has garnered widespread application across chalcogenide semiconductor materials owing to its distinctive optoelectronic properties, and its production and application generate a large amount of waste. Recycling these wastes through gradient separation delivers both economically and environmentally beneficial. However, the recovery of predominant Se would be accompanied by As precipitation, causing contamination. In this study, potential ( E )-pH diagram-guided gradient separation for efficient and selective recovery of Se, antimony (Sb) and germanium (Ge) from As–Se alloy waste has been proposed. Constructed E –pH diagram and half-wave potential equation display the existence of separation windows of sole production of elemental Se without As precipitation and the reduction potential of hydrazine hydrate locates at this region exactly, leading to selective reduction for Se production. Afterwards, the Sb, Ge and As can be gradually extracted through precipitation after hydrolysis precipitation, complexation-induced precipitation and sulfide precipitation. Under the optimized experimental conditions, the recovery efficiencies of Se, Sb, Ge, and As reach 98.9%, 98.7%, 99.9%, and 97.8%, respectively. After As removal treatment, the As concentration in the solution is below 0.2 mg/L, meeting the As-containing wastewater discharge standard (≤0.5 mg/L), realizing effective resource recycling and centralized disposal of hazardous substances.

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Publication Details

Journal
Journal of Cleaner Production
Published
2026-09-17
DOI
https://doi.org/10.1016/j.jclepro.2026.149426
Primary Topic
Selenium in Biological Systems
Type
article
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article

Selective selenium separation against arsenic coprecipitation and gradient recovery of minor metals from arsenic-selenium alloy waste

Zhengzheng Liu, 钱庆长, Huibin Zhang, Anyang Tang et al.
Journal of Cleaner Production
Selenium in Biological Systems
article

Selective selenium separation against arsenic coprecipitation and gradient recovery of minor metals from arsenic-selenium alloy waste

Zhengzheng Liu, 钱庆长, Huibin Zhang, Anyang Tang, Junfeng Kong, Huazhen Cao, Yan Wen, Xinyu Wu, Huiqian Dai
article en

Abstract

Minor metal-doped arsenic-selenium (As–Se) alloy has garnered widespread application across chalcogenide semiconductor materials owing to its distinctive optoelectronic properties, and its production and application generate a large amount of waste. Recycling these wastes through gradient separation delivers both economically and environmentally beneficial. However, the recovery of predominant Se would be accompanied by As precipitation, causing contamination. In this study, potential ( E )-pH diagram-guided gradient separation for efficient and selective recovery of Se, antimony (Sb) and germanium (Ge) from As–Se alloy waste has been proposed. Constructed E –pH diagram and half-wave potential equation display the existence of separation windows of sole production of elemental Se without As precipitation and the reduction potential of hydrazine hydrate locates at this region exactly, leading to selective reduction for Se production. Afterwards, the Sb, Ge and As can be gradually extracted through precipitation after hydrolysis precipitation, complexation-induced precipitation and sulfide precipitation. Under the optimized experimental conditions, the recovery efficiencies of Se, Sb, Ge, and As reach 98.9%, 98.7%, 99.9%, and 97.8%, respectively. After As removal treatment, the As concentration in the solution is below 0.2 mg/L, meeting the As-containing wastewater discharge standard (≤0.5 mg/L), realizing effective resource recycling and centralized disposal of hazardous substances.

Journal of Cleaner ProductionVol. 577
Tongling Nonferrous Metals Group Holding (China) (CN), Zhejiang University of Technology (CN), Zhejiang University (CN)
Openalex Percentile: Top 12%
Selenium in Biological Systems
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