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研究碳纳米管-苝量子点杂化纳米复合材料中的光诱导电荷转移。

Investigating photoinduced charge transfer in carbon nanotube-perylene-quantum dot hybrid nanocomposites.

机构信息

Department of Chemistry & Biochemistry, Southern Illinois University, Carbondale, Illinois 62901, United States.

出版信息

ACS Nano. 2010 Nov 23;4(11):6883-93. doi: 10.1021/nn1020067. Epub 2010 Oct 14.

DOI:10.1021/nn1020067
PMID:20945933
Abstract

In this study, we investigate photophysical and photoinduced current responses of a nanocomposite which consists of multiwalled carbon nanotubes (CNTs), thiol derivative perylene compound (ETPTCDI), and cadmium selenide quantum dots (QDs). These QDs as well as the ETPTCDI harvest photons and transfer their excited electrons or holes to CNTs to complete the circuit. Both QDs and ETPTCDI contribute charges to the carbon nanotubes, which increased the overall photon harvest efficiency of the nanocomposite. Herein, we investigate through a series of photophysical photoluminescence quenching studies the charge transfer between donors (QDs and ETPTCDI) and acceptor (CNTs). The incorporation of ETPTCDI into the nanocomposite significantly increases the adhesion between QDs and CNTs through bonding between QDs and thiol groups on ETPTCDI and π-π interactions between ETPTCDI and CNTs. Thus, ETPTCDI acted as a molecular linker between QDs and CNTs. Furthermore, a significant increase (>5 times) in the Stern-Volmer constant, K(sv), for QD emission after addition of ETPTCDI-tagged CNTs clearly indicates a large enhancement in the adhesion between CNTs and QDs. The nanocomposite shows a ∼2-4-fold increase in the photoconductivity when exposed to AM1.5 solar-simulated light. The damage to the nanocomposite from the intensity of the solar-simulated light is also investigated. The proposed nanocomposite has the potential for photovoltaic applications such as being the active component in a hybrid bulk heterojunction solar cell.

摘要

在这项研究中,我们研究了由多壁碳纳米管(CNTs)、硫醇衍生物苝化合物(ETPTCDI)和碲化镉量子点(QDs)组成的纳米复合材料的光物理和光电流响应。这些 QDs 和 ETPTCDI 吸收光子,并将其激发电子或空穴转移到 CNTs 以完成电路。QDs 和 ETPTCDI 都为碳纳米管提供电荷,从而提高了纳米复合材料的整体光子收集效率。在此,我们通过一系列光物理光致荧光猝灭研究来研究供体(QDs 和 ETPTCDI)和受体(CNTs)之间的电荷转移。ETPTCDI 的掺入通过 QDs 和 ETPTCDI 上的硫醇基团之间的键合以及 ETPTCDI 和 CNTs 之间的π-π相互作用,显著增加了 QDs 和 CNTs 之间的附着力,从而将 ETPTCDI 作为 QDs 和 CNTs 之间的分子连接体。此外,加入 ETPTCDI 标记的 CNTs 后,QD 发射的 Stern-Volmer 常数(Ksv)显著增加(>5 倍),这清楚地表明 CNTs 和 QDs 之间的附着力大大增强。当暴露于 AM1.5 模拟太阳光时,该纳米复合材料的光电导率增加了约 2-4 倍。还研究了模拟太阳光强度对纳米复合材料的破坏。该提议的纳米复合材料具有光伏应用的潜力,例如作为混合体异质结太阳能电池的活性组件。

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