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Carbon Nanotube and Semiconductor Nanorods Hybrids: Preparation, Characterization, and Evaluation of Photocurrent Generation

机译:碳纳米管和半导体纳米杆杂种:光电流的制备,表征和评估

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Carbon nanotubes (CNTs) and semiconductor nanocrystals (SCNCs) are known to be interesting donor-acceptor partners due to their unique optical and electronic properties. These exciting features have led to the development of novel composites based on these two nanomaterials and to their characterization for use in various applications, such as components in sensors, transistors, solar cells and biomedical devices. Two approaches based on covalent and noncovalent methods have been suggested for coupling the SCNCs to CNTs. Most covalent conjugation methods used so far were found to disrupt the electronic structure of the CNTs or interfere with charge transfer in the CNT-SCNC interface. Moreover, it offers random and poorly organized nanoparticle coatings. Therefore, noncovalent methods are considered to be ideal for better electronic coupling. However, a key common drawback of noncovalent methods is the lack of stability which hampers their applicability. In this article, a method has been developed to couple semiconductor seeded nanorods onto CNTs through pi-pi interactions. The CNTs and pyrene conjugated SCNC hybrid materials were characterized by both microscopic and spectroscopic techniques. Fluorescence and photocurrent measurements suggest the proposed pi-stacking approach results in a strong electronic coupling between the CNTs and the SCNCs leading to better photocurrent efficiency than that of a covalent conjugation method reported using similar SCNC material. Overall, the CNT-SCNC films reported in the present study open the scope for the fabrication of optoelectronic devices for various applications.
机译:已知碳纳米管(CNT)和半导体纳米晶体(SCNC)由于其独特的光学和电子性能而有趣的供体 - 受体合作伙伴。这些励磁特征导致了基于这两种纳米材料的新型复合材料的开发以及它们的表征,以便在各种应用中使用,例如传感器,晶体管,太阳能电池和生物医学装置中的组件。已经提出了基于共价和非共价方法的两种方法,用于将SCNC偶联至CNT。到目前为止使用的大多数共价共轭方法扰乱CNT的电子结构或干扰CNT-SCNC接口中的电荷转移。此外,它提供随机和较差的纳米粒子涂层。因此,非共价方法被认为是更好的电子耦合的理想选择。然而,非价法的关键常见缺点是缺乏稳定性,妨碍了它们的适用性。在本文中,已经开发了一种方法,以通过PI-PI相互作用将半导体种子纳米棒耦合到CNT上。通过微观和光谱技术表征CNT和芘共轭SCNC杂化材料。荧光和光电流测量表明,所提出的PI堆叠方法导致CNT和SCNC之间的强电子耦合,从而优于使用类似SCNC材料报道的共价缀合方法的光电流效率。总的来说,本研究报告的CNT-SCNC薄膜开启了用于各种应用的光电器件的制造的范围。

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