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71.
《Physics letters. A》2020,384(32):126831
In this Letter, we report the polarization-enhanced bulk photovoltaic effect (BPV) in pristine BiFeO3 (BFO) epitaxial film under standard 1 sun AM 1.5 G illumination. High-quality epitaxial BFO films are grown on (001)-oriented niobium doped-SrTiO3 substrates by pulsed laser deposition. The best BFO film based photovoltaic device achieves a power conversion efficiency of 0.0062% under standard illumination. Besides, it is found that the number of bipolar pulses plays a key role in improving the short-circuit current density and open-circuit voltage. These results are beneficial for further understanding of physical origin of the photovoltaic properties in ferroelectric oxides. 相似文献
72.
73.
基于p-n结的光生伏特效应可构筑性能优异的UV探测器,本文采用水热法可控制备竖直排列的氧化锌纳米棒阵列(n型ZnO-NRs),利用原位聚合法在ZnO-NRs表面上修饰p型聚苯胺线膜(PANI-NWs),再组装成ZnO-NRs与ZnO-NRs/PANI-NWs紫外探测器。通过扫描电镜(SEM)、X射线衍射仪(XRD)、紫外可见漫反射(UV-Vis)光谱表征样品的形貌、结构与光学性质。并通过电化学工作站测定电流-时间(I-t)和电流电压(I-V)曲线,表征其光响应性能。结果表明,制备的ZnO-NRs/PANI-NWs材料阵列排列整齐,界面接触良好,孔隙均匀。ZnO-NRs/PANI-NWs探测器在检测365 nm紫外光时,光电流为2.73×10-4 A;检测254 nm紫外光时,光电流为1.44×10-4 A。其光电流为ZnO-NRs探测器的4~10倍,ZnO-NRs和PANI-NWs之间形成的p-n结增强了光电导。用ZnO-NRs/PANI-NWs材料组装成的UV探测器体现出稳定性好,响应速度快,恢复时间短,电流增益高等优点,为开发高性能紫外光电探测器提供数据支撑。 相似文献
74.
共轭聚合物发光和光伏材料研究进展 总被引:5,自引:1,他引:4
聚合物光电功能材料与器件因其广阔的应用前景,1990年以年来吸引了世界各国学术界的广泛关注和兴趣.聚合物光电子器件主要包括聚合物电致发光二极管、聚合物场效应晶体管和聚合物太阳能电池等,其使用的关键材料是共轭聚合物光电子材料,包括共轭聚合物发光材料、场效应晶体管材料和光伏材料等.本文主要对共轭聚合物电致发光材料和光伏材料的研究进展进行综述,介绍了这些聚合物材料的种类、结构和性质以及在聚合物电致发光器件和聚合物太阳能电池中的应用.并讨论了当前共轭聚合物光电子材料中的关键科学问题和今后的发展方向. 相似文献
75.
近年来,铁电材料作为一种潜在的高活性光催化剂材料越来越多地受到研究者关注.由于晶体结构的对称性破缺导致铁电晶体中出现自发极化,在这种极化内建电场的影响下,光生电子-空穴将发生空间分离,从而有效抑制载流子复合,进一步提高光催化体系的总量子效率.文献报道了很多性能优异的铁电光伏器件,在这样的思路下,越来越多的材料被直接作为光催化材料来研究,但有关顺电-铁电差异的报道很少,铁电性与光催化性能关联的直接证据尚有欠缺.研究表明, SrxBa1-xNb2O6(SBN)材料的居里温度(TC)对组分调变有很强的依赖性,当 Sr2+含量发生改变时(x =0.32-0.82),其居里温度可在10-270oC范围内变化.因此,合成一个居里温度接近室温的 SBN材料,研究其在顺/铁电相下自发极化行为、光生电荷分离行为、光催化行为及结构演变,就可能得到一个关于铁电性与光催化性能关系的直接证据,并有助于理解二者的关联性.本文以较低温度(65°C)下发生铁-顺电相变的 Sr0.7Ba0.3Nb2O6(SBN-70)材料为模型体系,使用X射线衍射、紫外可见光谱及不同温度下的铁电及介电测试、光电测试、光催化产氢和荧光激发谱等表征技术,研究了 SBN-70光电/光催化性能差异与相结构的相关性.首先使用高温固相合成法制备了纯相的四方钨青铜型 SBN-70材料,根据紫外可见漫反射光谱表征结果,推测 SBN-70材料在热力学上可发生光催化水分解反应.对 SBN-70进行的铁电及介电测试表明 SBN-70属于典型的弛豫型铁电材料:介电峰温度宽化显著,且介电峰位置随不同测试频率发生变化.在f =1 kHz测试下,其名义居里温度约为65oC.使用高温下两步烧结法制备了致密的 Ag/SBN-70/Ag陶瓷样品.受到高强度电场(E =30 kV/cm)极化的 Ag/SBN-70/Ag样品在紫外光照射下出现了显著光伏效应,铁电回线测试表明极化后的 SBN-70材料中存在强度约为0.8 kV/cm由剩余极化导致的内建电场,当经过极化的 SBN-70经过80oC退火后,光伏效应消失.结果表明, SBN-70极化后在内建极化场的作用下,在低温铁电相表现了显著的光生电荷分离能力,在进入高温顺电相后,这种分离能力随着自发极化的消失而消失.同时我们发现担载 Pt的 SBN-70粉末样品作为光催化剂在不同温度下存在很大的光催化产氢活性差异:反应在15oC时,产氢量为4.5μmol,随着反应温度升高,其产氢量升高,在60oC时为5.3μmol,继续升高温度至80oC时,发生了反常的活性变化,即产氢活性完全消失.这种反常的活性-温度关系可能与 SBN-70的铁-顺电相变有关:进入高温顺电相(80oC)后,晶体结构回到4/mmm点群,铁电畴结构不再存在,从而丧失了作为电荷分离驱动力的自发极化.不同温度下荧光激发谱结果也暗示了 SBN-70在高于65oC附近极化结构的消失.本文结果表明,铁电相中存在的铁电极化结构确实有利于光生电荷分离,进而提高了光催化反应活性. 相似文献
76.
A Photoferroelectric Perovskite‐Type Organometallic Halide with Exceptional Anisotropy of Bulk Photovoltaic Effects 下载免费PDF全文
Dr. Zhihua Sun Dr. Xitao Liu Tariq Khan Chengmin Ji Muhammad Adnan Asghar Dr. Sangen Zhao Dr. Lina Li Prof. Maochun Hong Prof. Junhua Luo 《Angewandte Chemie (International ed. in English)》2016,55(22):6545-6550
Perovskite‐type ferroelectrics composed of organometallic halides are emerging as a promising alternative to conventional photovoltaic devices because of their unique photovoltaic effects (PVEs). A new layered perovskite‐type photoferroelectric, bis(cyclohexylaminium) tetrabromo lead ( 1 ), is presented. The material exhibits an exceptional anisotropy of bulk PVEs. Upon photoexcitation, superior photovoltaic behaviors are created along its inorganic layers, which are composed of corner‐sharing PbBr6 octahedra. Semiconducting activity with remarkable photoconductivity is achieved in the vertical direction, showing sizeable on/off current ratios (>104), which compete with the most active photovoltaic material CH3NH3PbI3. In 1 the temperature‐dependence of photovoltage coincides fairly well with that of polarization, confirming the dominant role of ferroelectricity in such highly anisotropic PVEs. This finding sheds light on bulk PVEs in ferroelectric materials, and promotes their application in optoelectronic devices. 相似文献
77.
Inside Back Cover: Monodisperse Dual‐Functional Upconversion Nanoparticles Enabled Near‐Infrared Organolead Halide Perovskite Solar Cells (Angew. Chem. Int. Ed. 13/2016) 下载免费PDF全文
78.
Eunhee Lim 《Molecular Crystals and Liquid Crystals》2016,635(1):94-101
ABSTRACTAn acceptor-donor-acceptor (A–D–A)-type small molecule, BDT-IN, having a benzo[1,2-b:4,5-b']dithiophene (BDT) unit as its electron-donating core (D) and an 1,3-indanedione (IN) unit as its electron-withdrawing end group (A), was synthesized by Knoevenagel condensation. The BDT-IN film showed broader UV absorption with a greater red shift (λmax = 622 nm) than that of the BDT-IN solution (λmax = 570 nm). The organic photovoltaic cells were fabricated with an ITO/PEDOT:PSS/poly(3-hexylthiophene): BDT-IN/LiF/Al configuration, and showed a power conversion efficiency of 0.23%. 相似文献
79.
80.
Llabrés i Xamena FX Teruel L Alvaro M Garcia H 《Chemistry (Weinheim an der Bergstrasse, Germany)》2007,13(2):515-519
We have used porous anodised Al(2)O(3) membranes as inert matrix for constructing and organizing spatially ternary donor/conductor/acceptor (DCA) systems exhibiting photovoltaic cell activity on the micrometric-length scale. These DCA triads were built stepwise by first growing a conducting polymer inside the membrane pores, thus forming nanorods that completely fill the internal pore space of the membrane. Then, an electron donor and an electron acceptor were adsorbed one on each side of the membrane, so that they were separated by a distance equal to the membrane thickness (ca. 60 microm), but electronically connected through the conductive polymer. When this device was placed between two electrodes and irradiated with visible light, electrons jumped from the donor molecule, crossed the membrane from side to side through the conductive polymer (a journey of about 60 microm!) until they finally reach the acceptor molecule. In so doing, an electric voltage was generated between the two electrodes, capable of maintaining an electric current flow from the membrane to an external circuit. Our DCA device constitutes the proof of a novel concept of photovoltaic cells, since it is based on the spatial organization at the micrometric scale of complementary, but not covalently linked, electron-donor and electron-acceptor organic species. Thus, our cell is based in translating photoinduced electron transfer between donors and acceptors, which is known to occur at the molecular nanometric scale, to the micrometric range in a spatially organised system. In addition our cell does not need the use of liquid electrolytes in order to operate, which is one of the main drawbacks in dye-sensitised solar cells. 相似文献