Effect of alkali metal nitrates on palladium dissolution in nitric acid solutions

IF 4.8 2区 材料科学 Q1 METALLURGY & METALLURGICAL ENGINEERING Hydrometallurgy Pub Date : 2024-02-26 DOI:10.1016/j.hydromet.2024.106285
Ming Tian , Zhanpeng Yan , Minghui Liu , Tianyan Xue , Ying Yu , Hui Zhang , Tao Qi
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Abstract

Hydrometallurgical unit operations are typically used to recover palladium (Pd) from its ores and secondary resources with high selectivity owing to their low energy consumption, cost effectiveness, and volume flexibility. Herein, diluted HNO3 solutions with added nitrate salts were used to dissolve Pd powders. Moreover, solutions of nitrates with same valency cations (such as HNO3, LiNO3, NaNO3, KNO3, CsNO3, and NH4NO3) and same period cations (such as NaNO3, Mg(NO3)2, and Al(NO3)3) were used to reveal the involved beneficial effects of the nitrates on the Pd dissolution in an environment friendly way with low acidity of the solutions. Among all added alkali metal nitrates, LiNO3 resulted in the highest Pd dissolution efficiency, which was attributed to the higher dissociation constant of LiNO3, resulting in a higher concentration of free nitrate and hence a higher oxidation potential of the overall system. The dissolution process was systematically investigated to determine the optimal temperature (353 K), LiNO3 and HNO3 concentrations (6 and 1 mol L−1, respectively), stirring speed (500 rpm), and reaction time (5 h). These optimal conditions yielded a dissolution efficiency of 99.6%. Notably, as the reaction proceeded, the Pd powder surfaces corroded to form numerous holes, indicating that internal diffusion control also affected Pd dissolution.

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碱金属硝酸盐对硝酸溶液中钯溶解的影响
由于能耗低、成本效益高、体积灵活,水冶单元操作通常用于从钯矿石和二次资源中回收高选择性的钯。在此,我们使用添加了硝酸盐的稀释 HNO 溶液来溶解钯粉。此外,还使用了同价阳离子(如 HNO、LiNO、NaNO、KNO、CsNO 和 NHNO)和同周期阳离子(如 NaNO、Mg(NO) 和 Al(NO))的硝酸盐溶液,以揭示硝酸盐在溶液酸度较低的环境友好型条件下对钯溶解的有益影响。在所有添加的碱金属硝酸盐中,LiNO 的钯溶解效率最高,这是因为 LiNO 的解离常数较高,导致游离硝酸盐的浓度较高,因而整个系统的氧化电位较高。对溶解过程进行了系统研究,以确定最佳温度(353 K)、LiNO 和 HNO 浓度(分别为 6 和 1 mol L)、搅拌速度(500 rpm)和反应时间(5 h)。在这些最佳条件下,溶解效率达到 99.6%。值得注意的是,随着反应的进行,钯粉表面被腐蚀形成许多小孔,这表明内部扩散控制也影响了钯的溶解。
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来源期刊
Hydrometallurgy
Hydrometallurgy 工程技术-冶金工程
CiteScore
9.50
自引率
6.40%
发文量
144
审稿时长
3.4 months
期刊介绍: Hydrometallurgy aims to compile studies on novel processes, process design, chemistry, modelling, control, economics and interfaces between unit operations, and to provide a forum for discussions on case histories and operational difficulties. Topics covered include: leaching of metal values by chemical reagents or bacterial action at ambient or elevated pressures and temperatures; separation of solids from leach liquors; removal of impurities and recovery of metal values by precipitation, ion exchange, solvent extraction, gaseous reduction, cementation, electro-winning and electro-refining; pre-treatment of ores by roasting or chemical treatments such as halogenation or reduction; recycling of reagents and treatment of effluents.
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