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陷阱态对Ag-TiO_(2)光诱导界面电荷转移的影响:电化学、光电化学和光谱表征
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作者 梁志豪 王家正 +2 位作者 王丹 周剑章 吴德印 《电化学(中英文)》 CAS 北大核心 2023年第8期31-46,共16页
在基于金属-半导体异质结构的等离激元介导化学反应中,了解其中的电荷转移和复合机制进而调控界面、提高界面电荷分离,对于提高等离激元催化反应效率至关重要。但电化学体系中固液界面上的等离激元光电催化反应是一个多过程、多时间尺... 在基于金属-半导体异质结构的等离激元介导化学反应中,了解其中的电荷转移和复合机制进而调控界面、提高界面电荷分离,对于提高等离激元催化反应效率至关重要。但电化学体系中固液界面上的等离激元光电催化反应是一个多过程、多时间尺度、多影响因素的复杂体系,光生载流子在界面间传递机制的研究仍面临着巨大的挑战。由于光电化学信号的产生和变化包含了诸多体相和界面过程,因此光电化学方法是探究等离激元催化反应过程中的界面电荷转移机制的有效手段之一。本文合成了TiO_(2)和Ag-TiO_(2)纳米粒子,以光电化学方法作为主要研究手段,并结合电化学和各种谱学表征手段,探究了电极陷阱态对界面电荷转移机制的影响。结果表明,在Ag负载在TiO_(2)表面后,电极的陷阱态显著增加。结合XPS以及PL光谱,陷阱态增加可主要归咎于表面羟基。陷阱态的增加导致了荧光的猝灭和光电响应的减弱,但增加的陷阱态复合过程也延长了载流子的寿命。陷阱态的调控必然会影响界面电荷转移,从而改变热载流子的数量和寿命,进而调控后续Ag界面上的等离激元反应。在反应位点位于金属的基于金属-半导体复合体系的等离激元催化反应中,认识到半导体陷阱态对于界面电荷转移的作用有助于在等离激元介导化学反应中更好地利用载流子、提高反应效率。 展开更多
关键词 等离激元 Ag-TiO_(2) 陷阱态 电荷转移 光电化学表征
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光电流谱、光致发光光谱和紫外可见吸收光谱在纳米半导体光电器件研究中的联用 被引量:1
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作者 卞斯达 周剑章 林仲华 《电化学》 CAS CSCD 北大核心 2021年第1期45-55,共11页
在纳米半导体中由于纳米效应(如量子尺寸效应),其电子结构与块体半导体有所不同。进一步地,当纳米半导体与基底和其他组分结合制成器件后,其性质又受到基底或其他组分的影响,这两点导致了基于纳米半导体的光电器件的性能以及相应表征方... 在纳米半导体中由于纳米效应(如量子尺寸效应),其电子结构与块体半导体有所不同。进一步地,当纳米半导体与基底和其他组分结合制成器件后,其性质又受到基底或其他组分的影响,这两点导致了基于纳米半导体的光电器件的性能以及相应表征方法也大不相同。将光电流谱、光致发光光谱和紫外可见吸收光谱三种技术有机地结合起来,可以更好地表征纳米半导体的电子性质和光电性能。本文根据纳米半导体材料与电极的电子性质特点及其测量,结合本课题组前期工作,举例介绍三种谱学方法相结合应用于探究光伏电池和电致发光器件的纳米半导体材料的性能,以及纳米半导体材料表面态的表征。 展开更多
关键词 光电流谱 光致发光光谱 紫外可见吸收光谱 纳米半导体
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Efficient plasmon-enhanced perovskite solar cells by molecularly isolated gold nanorods
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作者 Yong Hui En-Ming You +11 位作者 Qing-Peng Luo Tan Wang Zi-Ang Nan Yu Gu Wen-Han Zhang Zhuan-Yun Cai Liang Chen jian-zhang zhou Jia-Wei Yan Zhao-Xiong Xie Bing-Wei Mao Zhong-Qun Tian 《Journal of Energy Chemistry》 SCIE EI CAS CSCD 2022年第10期60-67,I0003,共9页
Perovskite solar cells(PSCs)are becoming a promising candidate for next-generation photovoltaic cells due to their attractive power conversion efficiency(PCE).Plasmonic enhancement is regarded as an optical tuning app... Perovskite solar cells(PSCs)are becoming a promising candidate for next-generation photovoltaic cells due to their attractive power conversion efficiency(PCE).Plasmonic enhancement is regarded as an optical tuning approach for further improving the PCE of single-junction PSCs toward Shockley-Queisser limit.Herein,we introduce molecularly isolated gold nanorods(Au NRs),bearing relatively stronger scattering ability and localized surface plasmonic resonance(LSPR)effect,in the rear side of perovskites in PSCs,for promoting light harvesting and for electrical enhancement.Owing to the larger refractive index and better matched energy level alignment,the 4-mercaptobenzoic acid molecules coated on Au NRs prove to play important dual roles:isolating the metallic Au NRs from contacting with perovskite,and facilitating more efficient charge separation and transport across the interface under the synergetic LSPR effect of Au NRs.Our work highlights the capability of the plasmonic approach by nanorods and by molecular isolation,extending nanoparticle-based plasmonic approaches,toward highly efficient plasmon-enhanced PSCs. 展开更多
关键词 Perovskite solar cells Plasmon-enhanced Gold nanorods Molecular isolation Scattering
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Nanofabrication of the gold scanning probe for the STM-SECM coupling system with nanoscale spatial resolution 被引量:2
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作者 Fang-Fang Wang Wei Wang +5 位作者 Xi He Lianhuan Han jian-zhang zhou Zhong-Qun Tian Zhao-Wu Tian Dongping Zhan 《Science China Chemistry》 SCIE EI CAS CSCD 2017年第5期649-655,共7页
Scanning probe is the key issue for the electrochemical scanning probe techniques(EC-SPM) such as EC-scanning tunnel microscopy(STM), EC-atomic force microscopy(AFM) and scanning electrochemical microscopy(SECM), espe... Scanning probe is the key issue for the electrochemical scanning probe techniques(EC-SPM) such as EC-scanning tunnel microscopy(STM), EC-atomic force microscopy(AFM) and scanning electrochemical microscopy(SECM), especially the insulative encapsulation of the nanoelectrode probe for both positioning and electrochemical feedbacks. To solve this problem,we develop a novel fabrication method of the gold nanoelectrodes: firstly, a micropipette with nanomter-sized orifice was prepared as the template by a laser puller; secondly, the inside wall of micropipette apex was blocked by compact and conic Au nano-piece through electroless plating; thirdly, the Au nano-piece was grown by bipolar electroplating and connected with a silver wire as a current collector. The fabricated Au nanoelectrode has very good voltammetric responses for the electrodic processes of both mass transfer and adsorption. The advantage lies in that it is well encapsulated by a thin glass sealing layer with a RG value lowered to 1.3, which makes it qualified in the SECM-STM coupling mode. On one hand, it can serve as STM tip for positioning which ensures the high spatial resolution; on the other hand, it is a high-quality nanoelectrode to explore the local chemical activity of the substrate. The nanofabrication method may promote the SPM techniques to obtain simultaneously the physical and chemical images with nanoscale spatial resolution, which opens a new approach to tip chemistry in electrochemical nanocatalysis and tip-enhanced spectroscopy. 展开更多
关键词 scanning probe SECM BIPOLAR NANOELECTRODE electrochemical imaging
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