Enhancing the stability of polymer solar cells by improving the conductivity of the nanostructured MoO3 hole-transport layer
文献信息
Amitaksha Saha, Chellappan Vijila, Rajan Jose, Zhang Jie, Seeram Ramakrishna
This article demonstrates improvements in the operational stability of organic solar cells (OSCs) by taking advantage of the relationship between oxygen stoichiometry and conductivity in nanostructured metal oxide semiconductors (n-MOS). OSCs in the inverted device configuration of ITO/Ca/P3HT:PCBM/MoO3/Ag were employed in the present study. A high degree of oxygen defects were introduced in the hole-conducting MoO3 layer by annealing the devices under vacuum (≥10−5 mbar) for nominal temperature (120 °C) and time (10 min). The above devices had much higher operational stability, when tested following the ISOS-D-1 (shelf) protocol, than control devices annealed conventionally, i.e., in nitrogen atmosphere. Employing current–voltage measurement as functions of temperature and photon flux, we show that the devices annealed under vacuum have a lesser density of traps than those annealed in nitrogen. The lesser trap density is shown to be beneficial in reducing the rate of electron recombination thereby increasing the operational stability of the corresponding device. A number of experiments were undertaken to show that the difference in the operation stability of the device results from the difference in conductivity of the nanostructured MoO3 hole transporting layer. The charge extraction by linear increasing voltage spectroscopy shows that charges are relaxed at the trap states in the device annealed in nitrogen whereas they are efficiently transported in the other device. We identify that building up of an interfacial potential barrier as a result of the charge relaxation at the trap states and the corresponding chemical changes in the devices annealed conventionally is the source of degradation of the device performance over time. To our knowledge, this is the first report that successfully overcomes hole-conductivity induced degradation in organic solar cells.
相关文献
Chronoamperometric study of membrane electrode assembly operation in continuous flow photoelectrochemical water splitting
Jan Rongé, Dorien Nijs, Stef Kerkhofs, Kasper Masschaele, Johan A. Martens
DOI: 10.1039/C3CP50890K
An ab initio investigation of Li2M0.5N0.5SiO4 (M, N = Mn, Fe, Co Ni) as Li-ion battery cathode materials
Sirous Asgari, Doretta Capsoni, Piercarlo Mustarelli
DOI: 10.1039/C3CP51481A
Photofragmentation at 263 nm of small peptides containing tyrosine: the role of the charge transfer on CO
Christophe Dehon, Satchin Soorkia, Mélanie Pedrazzani, Christophe Jouvet, Michel Barat, Jacqueline A. Fayeton, Bruno Lucas
DOI: 10.1039/C3CP50720C
K-edge XANES investigation of octakis(DMSO)lanthanoid(iii) complexes in DMSO solution and solid iodides
Paola D'Angelo, Valentina Migliorati, Riccardo Spezia, Simone De Panfilis, Ingmar Persson, Andrea Zitolo
DOI: 10.1039/C3CP50842K
Local electronic structure of aqueous zinc acetate: oxygen K-edge X-ray absorption and emission spectroscopy on micro-jets
Edlira Suljoti, Kai F. Hodeck, Kathrin M. Lange, Mikhail A. Soldatov
DOI: 10.1039/C3CP50686J
Influence of adsorption thermodynamics on guest diffusivities in nanoporous crystalline materials
Rajamani Krishna, Jasper M. van Baten
DOI: 10.1039/C3CP50449B
Sieving di-branched from mono-branched and linear alkanes using ZIF-8: experimental proof and theoretical explanation
Marjo C. Mittelmeijer-Hazeleger, Miguel Angelo Granato, Vanessa F. Duarte Martins, Alírio E. Rodrigues, Gadi Rothenberg
DOI: 10.1039/C3CP44381G
Effects of rare-earth co-doping on the local structure of rare-earth phosphate glasses using high and low energy X-ray diffraction
Vicky FitzGerald, Veijo Honkimaki, Mark A. Roberts, Tessa Brennan, Richard A. Martin, George A. Saunders, Robert J. Newport
DOI: 10.1039/C3CP44298E
In situ X-ray pair distribution function analysis of geopolymer gel nanostructure formation kinetics
John L. Provis, Breaunnah Bloomer, Neil J. Henson, Katharine Page
DOI: 10.1039/C3CP44342F
您可能还喜欢
(5-氨基吡唑-3-基)乙酸(CAS号:174891-10-2)的物理化学性质是什么?
(5-氨基吡唑-3-基)乙酸是一种无色至白色固体,分子量为174.15 g/mol。它在水中具有较好的溶解性,在有机溶剂中的溶解度较低。该化合物具有较好的反应活...
3-氟-4,5-二氯苯胺(CAS号:35754-38-2)适用哪些法规指南?
3-氟-4,5-二氯苯胺受到多项法规指南的约束,包括但不限于GHS(全球化学品统一分类和标签制度)的危险分类标准、欧盟的REACH法规(注册、评估、授权和限制)...
什么是(R)-(+)-2,2',6,6'-四甲氧基-4,4'-联(二(3,5-二甲苯基基)膦基)-3,3'-二联吡啶(CAS号:442905-33-1)?
这是一种有机化合物,化学名为(R)-(+)-2,2',6,6'-四甲氧基-4,4'-联(二(3,5-二甲苯基基)膦基)-3,3'-二联吡啶,CAS号为44290...
1-氨基-2-氰基萘(CAS号:3100-67-2)应用于哪些行业?
1-氨基-2-氰基萘在医药、聚合物、传感器和半导体等行业中有应用。在医药领域,它可用作中间体合成某些药物。在聚合物行业,它可以用于制备具有特定性能的聚合物。此外...
如何处理含有1-溴-4-(异丙氧基甲基)苯(CAS号:98446-84-5)的废料?
处理含1-溴-4-(异丙氧基甲基)苯的废料时,首先应确保废液收集在防渗漏的容器中,避免泄露。然后,可以考虑采用化学降解法或物理吸附法进行处理。在特定条件下,可通...
6-Chloro-8-(trifluoromethyl)chroman-4-one(CAS号:1344889-75-3)的主要用途是什么?
6-氯-8-三氟甲基-2,3-二氢-4H-色喃-4-酮主要用于有机合成中的中间体,也可作为研究试剂使用。
7-乙氧基-2-萘酚(CAS号:57944-44-2)通常如何合成?
7-乙氧基-2-萘酚通常通过N-乙氧基化反应合成,首先将2-萘酚与乙醇钠在乙醇中反应生成7-乙氧基-2-萘酚钠盐,再通过酸化进一步得到7-乙氧基-2-萘酚。该合...
4-(1,1-二氧硫代吗啉)丁醇(CAS号:59801-41-1)适用哪些法规指南?
该化合物需遵循一系列的法规指南,包括但不限于GHS全球统一分类和标签制度,其分类可能包括易燃液体和可能危害水生环境。在欧洲,还需遵循REACH法规,确保物质和混...
4-甲氧基苄基叠氮甲酸酯(CAS号:25474-85-5)的物理化学性质是什么?
4-甲氧基苄基叠氮甲酸酯是一种无色液体,具有一定的挥发性。其分子量为198.16,熔点为-69°C,沸点为105°C。该化合物在水中溶解度较低,在有机溶剂如乙醇...
如何处理含有4-氯-2-氟嘧啶(CAS号:51422-00-5)的废料?
含有4-氯-2-氟嘧啶的废料应按照危险废物处理。首先,应收集并分类这些废料,避免与其他废物混合。然后,可以采用焚烧处理或者交由专业机构进行处置。在处理过程中,需...
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.














![N-{[(2-Methyl-2-propanyl)oxy]carbonyl}-L-methionylglycine structure N-{[(2-Methyl-2-propanyl)oxy]carbonyl}-L-methionylglycine structure](https://cnstatic.chemtradehub.com/structs/234/23446-03-9-e1e5.webp)