Monolithically self-assembled organic active materials integrated with thermoelectric for large spectrum solar harvesting system (Presentation Recording)

T. Busani, O. Lavrova, M. Erdman, Julio A. Martinez, N. Dawson
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引用次数: 1

Abstract

We designed and studied a radial junction composed by a photovoltaic and thermoelectric array based on ZnO and CdTe nanowires surrounded by an absorbing organic self assembled in order to efficiently convert UV-visible and IR energy into electricity. The hot anode of n-type ZnO nanowires was fabricated using a thermal process on pre-seeded layer and results to be crystalline with a transmittance up to 92 % and a bandgap of ~ 3.32 eV. Conductivity measurements reveal diode-like behavior for the ZnO nanowires. The organic layer was deposited between the anode and cathode at room temperature The organic layer is composed of oppositely charged porphyrin metal (Zn(II) and Sn(IV)(OH)2) derivatives that are separately water soluble, but when combined form a virtually insoluble solid. The electron donor/acceptor properties (energy levels, band gaps) of the solid can be controlled by the choice of metals and the nature of the peripheral substituent groups of the porphyrin ring. A defect free sub nanometer deposition was achieved using a layer-by-layer deposition onto both ZnO and Bi2Te3 nanowires. The highly thermoelectric structure, which acts as a cold cathode, is composed of p-type Bi2Te3 nanowires with a thermoelectric efficiency (ZT) between ~0.7 to 1, values that are twice that expected for bulk Bi2Te3. Optoelectronic and structural properties shows that with 6 nm of organic layer it is possible to form a 3% efficient solar device with an enhanced thermo electric effected with a temperature gradient of 300 C.
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大光谱太阳能收集系统中集成热电的单片自组装有机活性材料(演示记录)
我们设计和研究了一种基于ZnO和CdTe纳米线的光伏和热电阵列组成的径向结,该结由吸收性有机自组装体包围,以有效地将紫外-可见和红外能量转化为电能。采用热法制备了n型ZnO纳米线的热阳极,其透过率高达92%,带隙为~ 3.32 eV。电导率测量揭示了ZnO纳米线的二极管样行为。有机层是由带相反电荷的金属卟啉(Zn(II)和Sn(IV)(OH)2)衍生物组成的,它们分别是水溶性的,但当它们结合时形成几乎不溶的固体。固体的电子供体/受体性质(能级,带隙)可以通过金属的选择和卟啉环的外围取代基的性质来控制。通过在ZnO和Bi2Te3纳米线上逐层沉积,实现了无缺陷的亚纳米沉积。作为冷阴极的高热电结构由p型Bi2Te3纳米线组成,热电效率(ZT)在~0.7到1之间,是体Bi2Te3预期值的两倍。光电性能和结构性能表明,使用6 nm的有机层可以形成具有增强热电效应的3%效率的太阳能器件,温度梯度为300℃。
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