Suppr超能文献

铂@六铌酸盐纳米豆荚:一种用于可见光照射下染料敏化半导体产氢的定向光催化结构。

Platinum@Hexaniobate Nanopeapods: A Directed Photocatalytic Architecture for Dye-Sensitized Semiconductor H Production under Visible Light Irradiation.

作者信息

Davis-Wheeler Chin Clare, Fontenot Patricia, Rostamzadeh Taha, Treadwell LaRico J, Schmehl Russell H, Wiley John B

机构信息

Department of Chemistry and Advanced Materials Research Institute, University of New Orleans, New Orleans, Louisiana70148, United States.

Advanced Materials Laboratory, Sandia National Laboratories, Albuquerque, New Mexico87106, United States.

出版信息

ACS Appl Energy Mater. 2022 Dec 26;5(12):14687-14700. doi: 10.1021/acsaem.2c01530. Epub 2022 Nov 28.

Abstract

Platinum@hexaniobate nanopeapods (Pt@HNB NPPs) are a nanocomposite photocatalyst that was selectively engineered to increase the efficiency of hydrogen production from visible light photolysis. Pt@HNB NPPs consist of linear arrays of high surface area Pt nanocubes encapsulated within scrolled sheets of the semiconductor H K NbO and were synthesized in high yield a facile one-pot microwave heating method that is fast, reproducible, and more easily scalable than multi-step approaches required by many other state-of-the-art catalysts. The Pt@HNB NPPs' unique 3D architecture enables physical separation of the Pt catalysts from competing surface reactions, promoting electron efficient delivery to the isolated reduction environment along directed charge transport pathways that kinetically prohibit recombination reactions. Pt@HNB NPPs' catalytic activity was assessed in direct comparison to representative state-of-the-art Pt/semiconductor nanocomposites (extPt-HNB NScs) and unsupported Pt nanocubes. Photolysis under similar conditions exhibited superior H production by the Pt@HNB NPPs, which exceeded other catalyst H yields (μmol) by a factor of 10. Turnover number and apparent quantum yield values showed similar dramatic increases over the other catalysts. Overall, the results clearly demonstrate that Pt@HNB NPPs represent a unique, intricate nanoarchitecture among state-of-the-art heterogeneous catalysts, offering obvious benefits as a new architectural pathway toward efficient, versatile, and scalable hydrogen energy production. Potential factors behind the Pt@HNB NPPs' superior performance are discussed below, as are the impacts of systematic variation of photolysis parameters and the use of a non-aqueous reductive quenching photosystem.

摘要

铂@六铌酸盐纳米豆荚(Pt@HNB NPPs)是一种纳米复合光催化剂,经过专门设计以提高可见光光解制氢的效率。Pt@HNB NPPs由封装在半导体H K NbO卷曲薄片内的高表面积Pt纳米立方体的线性阵列组成,并通过一种简便的一锅法微波加热方法高产率合成,该方法快速、可重复,且比许多其他先进催化剂所需的多步方法更易于扩展。Pt@HNB NPPs独特的三维结构使Pt催化剂与竞争性表面反应物理分离,促进电子沿着动力学上禁止复合反应的定向电荷传输途径有效地输送到孤立的还原环境中。与代表性的先进Pt/半导体纳米复合材料(extPt-HNB NScs)和无载体Pt纳米立方体直接比较评估了Pt@HNB NPPs的催化活性。在相似条件下的光解显示Pt@HNB NPPs具有优异的产氢性能,其产氢量比其他催化剂高出10倍。周转数和表观量子产率值相对于其他催化剂也有类似的显著增加。总体而言,结果清楚地表明,Pt@HNB NPPs在先进的多相催化剂中代表了一种独特、复杂的纳米结构,作为一种实现高效、通用和可扩展氢能生产的新结构途径具有明显优势。下文讨论了Pt@HNB NPPs优异性能背后的潜在因素,以及光解参数系统变化和使用非水还原猝灭光系统的影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/87e0/9795648/058d089d8c40/ae2c01530_0002.jpg

文献检索

告别复杂PubMed语法,用中文像聊天一样搜索,搜遍4000万医学文献。AI智能推荐,让科研检索更轻松。

立即免费搜索

文件翻译

保留排版,准确专业,支持PDF/Word/PPT等文件格式,支持 12+语言互译。

免费翻译文档

深度研究

AI帮你快速写综述,25分钟生成高质量综述,智能提取关键信息,辅助科研写作。

立即免费体验