铁电体和等离子体Ag异质结中电荷转移的感应效应增强CO2光还原

IF 3.6 2区 物理与天体物理 Q2 PHYSICS, APPLIED
Xiao Liu, Jicong Wang, Wenchao Tian, Yanrui Li, Jing Shi
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引用次数: 0

摘要

利用太阳能将二氧化碳转化为燃料和化学品是碳回收和能源更新的前沿方法。光生电子的转移行为和光催化剂的内置电场对光还原反应的效率有很大影响。本文构建了由钛酸铋钠(BNT)铁电体和银纳米粒子(Ag NPs)组成的异质结构,以提高光催化CO2的性能。BNT的大自发极化优化了光致电子和空穴的传递动力学,并在强内禀电场作用下引起能带弯曲。在银纳米粒子的帮助下,BNT@xAg异质结由于局域表面等离子体共振(LSPR)现象而表现出增强的光吸收,从而延长了可见光吸收光谱并加强了电荷转移。改性催化剂的电荷分离能力明显提高,电子寿命延长至40.95 ns。LSPR与本征极化的协同作用显著提高了光催化效率,并具有超高的CO产物选择性,在铁电催化剂等代表性光催化剂中表现突出。本研究阐明了等离子体Ag修饰BNT的光催化增强机理,为高效催化剂的设计提供了新的途径。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Inductive effect of charge transfer in ferroelectrics and plasmonic Ag heterojunctions for enhanced CO2 photoreduction
Converting carbon dioxide into fuel and chemicals by utilizing solar energy represents a cutting-edge approach to carbon recovery and energy renewal. The transfer behavior of photogenerated electrons and built-in electric field of photocatalysts greatly affect the efficiency of the photoreduction reaction. Herein, the heterostructures composed of bismuth sodium titanate (BNT) ferroelectrics and silver nanoparticles (Ag NPs) are constructed to promote the photocatalytic CO2 performance. The large spontaneous polarization of BNT optimizes the transfer dynamics of photoinduced electrons and holes and causes energy band bending with strong intrinsic electric field. With the aid of Ag NPs, the BNT@xAg heterojunctions exhibit intensified light absorption due to the phenomenon of localized surface plasmon resonance (LSPR), which extends the visible light absorption spectrum and strengthens charge transfer. The modified catalysts demonstrate improved charge separation capacity and notably prolonged electron lifetime up to 40.95 ns. The synergistic effect of LSPR and intrinsic polarization significantly boosts the photocatalytic efficiency together with ultrahigh CO product selectivity, which is outstanding among the ferroelectric and other representative photocatalysts. This study elucidates the photocatalytic enhancement mechanism of plasmonic Ag decorated BNT and offers an alternative route for the design of efficient catalysts.
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来源期刊
Applied Physics Letters
Applied Physics Letters 物理-物理:应用
CiteScore
6.40
自引率
10.00%
发文量
1821
审稿时长
1.6 months
期刊介绍: Applied Physics Letters (APL) features concise, up-to-date reports on significant new findings in applied physics. Emphasizing rapid dissemination of key data and new physical insights, APL offers prompt publication of new experimental and theoretical papers reporting applications of physics phenomena to all branches of science, engineering, and modern technology. In addition to regular articles, the journal also publishes invited Fast Track, Perspectives, and in-depth Editorials which report on cutting-edge areas in applied physics. APL Perspectives are forward-looking invited letters which highlight recent developments or discoveries. Emphasis is placed on very recent developments, potentially disruptive technologies, open questions and possible solutions. They also include a mini-roadmap detailing where the community should direct efforts in order for the phenomena to be viable for application and the challenges associated with meeting that performance threshold. Perspectives are characterized by personal viewpoints and opinions of recognized experts in the field. Fast Track articles are invited original research articles that report results that are particularly novel and important or provide a significant advancement in an emerging field. Because of the urgency and scientific importance of the work, the peer review process is accelerated. If, during the review process, it becomes apparent that the paper does not meet the Fast Track criterion, it is returned to a normal track.
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