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通过 ZnO 纳米棒有序组装阵列的光学和结构调制提高化学感应灵敏度。

Sensitivity gains in chemosensing by optical and structural modulation of ordered assembly arrays of ZnO nanorods.

机构信息

State Key Lab of Transducer Technology, Shanghai Institute of Microsystem and Information Technology, Chinese Academy of Sciences, Shanghai 200050, People's Republic of China.

出版信息

ACS Nano. 2011 Jun 28;5(6):4293-9. doi: 10.1021/nn103211d. Epub 2011 May 27.

Abstract

Nanomaterials and -structures have attracted much attention owing to their applications to ultrasensitive nanodevices. In this work, ordered assembly arrays of ZnO nanorods have been hydrothermally fabricated and used as optical substrates of fluorescence sensors for toxic vapors. The unique fastigiate nanorod assembly combines merits of single fibers and clusters, possessing identical orientation, large surface-to-volume ratio, evanescent transmission, and evanescent coupling. As coated on the assembly arrays, different sensing materials all generated amplified spontaneous emission (ASE) action such that the fluorescence intensity of the narrowed spectrum was 52.4-fold enhanced. Results of sensing experiments indicate that sensors based on the assembly arrays displayed 100% elevated normalized quenching rate and several times longer full-load time compared with reference sensors. This work provides a facile method to fabricate secondary structures of 1D rigid material and presents a new way to design highly sensitive optic sensors. Furthermore, evanescent excitation caused ASE action of fluorescent organics, and the correlative sensitivity gain is of interest in both theoretical research and the applications field.

摘要

由于纳米材料和结构在超灵敏纳米器件中的应用,它们引起了广泛关注。在这项工作中,我们通过水热法制备了有序组装的 ZnO 纳米棒阵列,并将其用作荧光传感器的光学基底,用于检测有毒蒸气。独特的渐开线纳米棒组装体结合了单纤维和纤维簇的优点,具有相同的取向、大的表面积与体积比、消逝场传输和消逝场耦合。在组装体阵列上涂覆不同的传感材料后,所有的材料都产生了放大自发辐射(ASE)作用,从而使窄谱的荧光强度增强了 52.4 倍。传感实验结果表明,与参考传感器相比,基于组装体阵列的传感器的归一化猝灭速率提高了 100%,满载时间延长了数倍。这项工作提供了一种制备一维刚性材料二次结构的简便方法,并为设计高灵敏度光学传感器提供了一种新方法。此外,消逝场激发荧光有机物质的 ASE 作用,相关的灵敏度增益在理论研究和应用领域都具有重要意义。

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