Piezocatalytic ZnS: Mn2+ Nanocrystals for Enhanced Organic Dye Degradation.

Materials and interfaces Pub Date : 2024-12-01 Epub Date: 2024-11-21 DOI:10.53941/mi.2024.100005
Zhongxiang Wang, Elizaveta Tiukalova, Youyi Tai, Miaofang Chi, Jin Nam, Yadong Yin
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Abstract

Piezocatalysis, an emerging approach that harnesses mechanical energy to drive chemical reactions, has garnered significant attention due to its potential applications in diverse fields, particularly in environmental remediation. Its broader application, however, is often hindered by the low efficiency of existing piezocatalytic materials. Here, we report the synthesis of Mn2+-doped ZnS nanocrystals with improved piezoelectric properties using an emulsion-based colloidal assembly technique. Through well-controlled Mn2+ doping, these nanocrystals demonstrate high piezocatalytic activity for degrading organic dyes under ultrasonic vibration. The optimal performance is achieved with 3% Mn2+ doping, outperforming many existing piezocatalysts. Mechanistic studies reveal the generation of reactive oxygen species as the primary driving force for degradation. Notably, pre-excitation with UV light further boosts the piezocatalytic efficiency of these metal ion-doped ZnS nanocrystals by filling electron trap states, leading to improved overall performance. This research paves the way for developing high-performance piezocatalysts, expanding the potential of piezocatalysis for a wide range of applications.

压电催化ZnS: Mn2+纳米晶体促进有机染料降解。
压电催化是一种利用机械能驱动化学反应的新兴方法,由于其在各个领域,特别是在环境修复方面的潜在应用而引起了广泛的关注。然而,现有压电催化材料的低效率往往阻碍了其更广泛的应用。在这里,我们报道了利用基于乳化的胶体组装技术合成具有改进压电性能的掺杂Mn2+的ZnS纳米晶体。通过对Mn2+掺杂的良好控制,这些纳米晶体在超声振动下对有机染料的降解表现出较高的压催化活性。当掺杂3%的Mn2+时,达到了最佳性能,优于许多现有的压电催化剂。机理研究表明活性氧的产生是降解的主要驱动力。值得注意的是,紫外光的预激发通过填充电子阱态进一步提高了这些金属离子掺杂ZnS纳米晶体的压催化效率,从而提高了整体性能。本研究为开发高性能压电催化剂铺平了道路,扩大了压电催化的广泛应用潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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