Titanium oxide morphology controls charge collection efficiency in quantum dot solar cells
文献信息
Ankita Kolay, P. Naresh Kumar, Sarode Krishna Kumar, Melepurath Deepa
Charge transfer at the TiO2/quantum dots (QDs) interface, charge collection at the TiO2/QDs/current collector (FTO or SnO2:F) interface, and back electron transfer at the TiO2/QDs/S2− interface are processes controlled by the electron transport layer or TiO2. These key processes control the power conversion efficiencies (PCEs) of quantum dot solar cells (QDSCs). Here, four TiO2 morphologies, porous nanoparticles (PNPs), nanowires (NWs), nanosheets (NSHs) and nanoparticles (NPs), were sensitized with CdS and the photovoltaic performances were compared. The marked differences in the cell parameters on going from one morphology to the other have been explained by correlating the shape, structure and the above-described interfacial properties of a given TiO2 morphology to the said parameters. The average magnitudes of PCEs follow the order: NWs (5.96%) > NPs (4.95%) > PNPs (4.85%) > NSHs (2.5%), with the champion cell based on NWs exhibiting a PCE of 6.29%. For NWs, an optimal balance between the fast photo-excited electron injection to NWs at the NW/CdS interface, the high resistance offered at the TiO2 NW/CdS/S2− interfaces to electron recombination with the oxidized electrolyte or with the holes in CdS, the low electron transport resistance in NWs, and low dark currents, yields the highest efficiency due to directional unhindered transport of electrons afforded by the NWs. For NSHs, electron trapping in the two dimensional sheets, and a high electron recombination rate prevent the effective transfer of electrons to FTO, thus reducing short circuit current density significantly, resulting in a poor performance. This study provides a deep understanding of charge transfer, transport and collection processes necessary for the design of efficient QDSCs.
期刊推荐

Chinese Journal of Chemistry

Critical Reviews in Solid State and Materials Sciences

Medicinal Chemistry Research

Electroanalysis

Cellulose

Acta Metallurgica Sinica-English Letters

Journal of Asian Natural Products Research

Herald of the Russian Academy of Sciences

Journal of Chemical Sciences

Colloid Journal
相关文献
Towards multielectron photocatalysis: a porphyrin array for lateral hole transfer and capture on a metal oxide surface
Bradley J. Brennan, Alec C. Durrell, Matthieu Koepf, Robert H. Crabtree, Gary W. Brudvig
DOI: 10.1039/C5CP01683E
Atomic structure of biodegradable Mg-based bulk metallic glass
DOI: 10.1039/C4CP03714F
Modelling bio-electrosynthesis in a reverse microbial fuel cell to produce acetate from CO2 and H2O
M. Kazemi, D. Biria, H. Rismani-Yazdi
DOI: 10.1039/C5CP00904A
Tuning the switching behavior of binary oxide-based resistive memory devices by inserting an ultra-thin chemically active metal nanolayer: a case study on the Ta2O5–Ta system
Shuang Gao, Fei Zeng, Minjuan Wang, Guangyue Wang, Cheng Song, Feng Pan
DOI: 10.1039/C5CP01235J
Nonseparable exchange–correlation functional for molecules, including homogeneous catalysis involving transition metals
Haoyu S. Yu, Pragya Verma, Donald G. Truhlar
DOI: 10.1039/C5CP01425E
Giant conductivity enhancement of ferrite insulators induced by atomic hydrogen
Qing-Yun Xiang, Yu Wang, Shi-Yu Li, Lan-Hua Wang, Li-Bin Mo, Wen-Qing Yao, Li Zhang
DOI: 10.1039/C5CP00878F
Radical anions of hypervalent silicon compounds: 1-substituted silatranes
Elena F. Belogolova, Tamara I. Vakul'skaya, Valery F. Sidorkin
DOI: 10.1039/C4CP06046F
Single-step preparation of two-dimensionally organized gold particles via ionic liquid/metal sputter deposition
Daisuke Sugioka, Tatsuya Kameyama, Susumu Kuwabata, Tsukasa Torimoto
DOI: 10.1039/C5CP01602A
Improving As(iii) adsorption on graphene based surfaces: impact of chemical doping
Diego Cortés-Arriagada, Alejandro Toro-Labbé
DOI: 10.1039/C5CP01313E
Ketocyanine dyes: impact of conjugation length on optical absorption and third-order polarizabilities
Kada Yesudas, Eluvathingal D. Jemmis, Kotamarthi Bhanuprakash
DOI: 10.1039/C5CP01410G
您可能还喜欢
4-[[6-(3-苯基苯基)-7H-嘌呤-2-基]氨基]苯磺酰胺(CAS号:2079895-42-2)适用哪些法规指南?
该化合物需遵循REACH法规以确保其安全使用和管理。同时,根据其潜在的生物降解性和毒性,也需要符合GHS分类中的相应要求。此外,若用于医药或食品相关领域,则还需...
反式-度骨化醇(CAS号:74007-20-8)的物理化学性质是什么?
反式-度骨化醇是一种脂溶性维生素D3的衍生物,呈无色或白色结晶性粉末,不溶于水,溶于乙醇、丙酮、氯仿等有机溶剂。其分子式为C28H44O,分子量为404.65。...
莲花掌苷(CAS号:59282-56-3)的市场或研究趋势如何?
莲花掌苷作为一种天然产物,近年来在抗炎、抗癌等生物活性研究方面显示出一定的潜力,因此市场需求逐渐增长。市场动态方面,随着天然产物开发的深入,预计该化合物的研究会...
2-溴-6-(吡咯烷-1-基)吡啶-4-硼酸频那醇酯(CAS号:1150271-64-9)应用于哪些行业?
2-溴-6-(吡咯烷-1-基)吡啶-4-硼酸频那醇酯在医药领域有着广泛的应用,它可以用作药物合成中的中间体。此外,它还可以用于有机合成,特别是在构建复杂杂环化合...
什么是methyl 2-(4-bromophenyl)-3-methylbutanoate(CAS号:1061284-70-5)?
methyl 2-(4-溴苯基)-3-甲基丁酸甲酯是一种化学物质,分子式为C12H13BrO2。它是一种有机化合物,具有一定的挥发性和易燃性。
CJC1-295(CAS号:863288-34-0)的物理化学性质是什么?
CJC1-295是一种具有复杂肽链结构的化合物,其分子量约为1875 Da。该化合物在水中具有一定的溶解性,但在有机溶剂中的溶解性不佳。它是一种反应活性化合物,...
三正丁基锍碘(CAS号:18146-62-8)的市场或研究趋势如何?
三正丁基锍碘作为一种重要的有机硫化合物,主要用于有机合成中作为亲电试剂。近年来,由于其在合成中的广泛应用,市场对其需求持续增长。此外,随着绿色化学的发展,对其替...
雌二醇-[13C3]同位素内标(CAS号:1261254-48-1)通常如何合成?
雌二醇-[13C3]同位素内标通常通过在雌二醇分子中引入[13C3]同位素来合成。常见的方法是通过化学标记反应,如与[13C3]标记的甲基溴化物进行亲核取代反应...
N1-(2-吡啶甲基)-N2-(2-甲基-1-萘基)草酰胺(CAS号:2611225-93-3)的物理化学性质是什么?
N1-(2-吡啶甲基)-N2-(2-甲基-1-萘基)草酰胺为固体化合物,具有良好的结晶形态,分子量为340.34 g/mol。该化合物在水中的溶解度较低,但在有...
如何处理含有十五碳烯酸甲酯(顺-10)(C15:1)标准品(CAS号:90176-52-6)的废料?
含有十五碳烯酸甲酯(顺-10)(C15:1)标准品的废料应首先进行适当收集和储存,避免与其他化学品混合。然后,可采用焚烧或交由专业废物处理公司进行处理。处理过程...
来源期刊
Physical Chemistry Chemical Physics

Physical Chemistry Chemical Physics (PCCP) is an international journal co-owned by 19 physical chemistry and physics societies from around the world. This journal publishes original, cutting-edge research in physical chemistry, chemical physics and biophysical chemistry. To be suitable for publication in PCCP, articles must include significant innovation and/or insight into physical chemistry; this is the most important criterion that reviewers and Editors will judge against when evaluating submissions. The journal has a broad scope and welcomes contributions spanning experiment, theory, computation and data science. Topical coverage includes spectroscopy, dynamics, kinetics, statistical mechanics, thermodynamics, electrochemistry, catalysis, surface science, quantum mechanics, quantum computing and machine learning. Interdisciplinary research areas such as polymers and soft matter, materials, nanoscience, energy, surfaces/interfaces, and biophysical chemistry are welcomed if they demonstrate significant innovation and/or insight into physical chemistry. Joined experimental/theoretical studies are particularly appreciated when complementary and based on up-to-date approaches.



![4-Chloro-2-{[(2-chlorophenoxy)acetyl]amino}benzoic acid structure 4-Chloro-2-{[(2-chlorophenoxy)acetyl]amino}benzoic acid structure](https://cnstatic.chemtradehub.com/structs/351/351424-20-9-9467.webp)
![2-Methylbenzo[h]quinoline structure 2-Methylbenzo[h]quinoline structure](https://cnstatic.chemtradehub.com/structs/605/605-88-9-ac43.webp)