Imaging of Photoinduced Interfacial Charge Separation in Conjugated Polymer/Semiconductor Nanocomposites

被引:11
作者
Liu, Ruchuan [1 ]
机构
[1] Natl Univ Singapore, Dept Phys, Singapore 117542, Singapore
关键词
SCANNING OPTICAL MICROSCOPY; TIO2; SOLAR-CELLS; SOLID-STATE; ELECTRON-TRANSFER; MEH-PPV; FORCE MICROSCOPY; THIN-FILMS; POLYMER; RECOMBINATION; PHOTOVOLTAICS;
D O I
10.1021/jp810732n
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Though having attracted extensive interests as the substitution for dye-sensitized TiO2 solar cell, hybrid nanocomposites of conducting polymer, and inorganic semiconductors for solar cells have still gave much less conversion efficiency. The photovoltaic processes are expected to take place mainly near the heterogeneous interfaces but directly visualizing those processes and correlating them with local nanostructures have not been established yet. Such a relationship is very important for the improvement of structural designs of the hybrid systems with better conversion efficiencies. In this article, two advanced microscopic techniques, near-field. scanning optical microscopy, and scanning electrostatic potential microscopy are employed to explore the photoinduced charge separation processes and kinetics in nanocomposites of poly(1,4-phenylenevinylene) and TiO2 nanoparticles, as well as their association with the local nanostructures. The results suggest that charge separation can be the dominant pathway for excitons near the interfaces as competing with fluorescence. Also, maps of charge redistribution upon illumination directly show the limited migration distance (similar to 20 nm) of holes in PPV films in consequence of electron injection into TiO2 nanoparticles. The migration distance of holes is of the same magnitude as the exciton diffusion length, and both of them are critical factors in photovoltaic applications of the hybrid composite and can potentially limit the light conversion efficiency. Thus, the results provide beneficial guidelines for nanostructure designs of hybrid solar cells.
引用
收藏
页码:9368 / 9374
页数:7
相关论文
共 50 条
[21]   The Rates of Charge Separation and Energy Destructive Charge Recombination Processes Within an Organic Dyad in Presence of Metal-Semiconductor Core Shell Nanocomposites [J].
Mandal, Gopa ;
Bhattacharya, Sudeshna ;
Das, Subrata ;
Ganguly, Tapan .
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2012, 12 (01) :187-194
[22]   Absence of Photoinduced Charge Transfer in Blends of PbSe Quantum Dots and Conjugated Polymers [J].
Noone, Kevin M. ;
Anderson, Nicholas C. ;
Horwitz, Noah E. ;
Munro, Andrea M. ;
Kulkarni, Abhishek P. ;
Ginger, David S. .
ACS NANO, 2009, 3 (06) :1345-1352
[23]   Efficient Charge Transport in Disordered Conjugated Polymer Microstructures [J].
Noriega, Rodrigo .
MACROMOLECULAR RAPID COMMUNICATIONS, 2018, 39 (14)
[24]   Theory of interfacial charge-transfer complex photophysics in π-conjugated polymer-fullerene blends [J].
Aryanpour, K. ;
Psiachos, D. ;
Mazumdar, S. .
PHYSICAL REVIEW B, 2010, 81 (08)
[25]   Molecular Photoinduced Charge Separation: Fundamentals and Application [J].
Imahori, Hiroshi .
BULLETIN OF THE CHEMICAL SOCIETY OF JAPAN, 2023, 96 (04) :339-352
[26]   PHOTOINDUCED CHARGE SEPARATION BY RUTHENIUM(II) PHOTOSENSITIZERS [J].
SUN, H ;
HOFFMAN, MZ .
PROCEEDINGS OF THE INDIAN ACADEMY OF SCIENCES-CHEMICAL SCIENCES, 1993, 105 (06) :487-494
[27]   Quantum modeling of ultrafast photoinduced charge separation [J].
Rozzi, Carlo Andrea ;
Troiani, Filippo ;
Tavernelli, Ivano .
JOURNAL OF PHYSICS-CONDENSED MATTER, 2018, 30 (01)
[28]   Understanding Photoinduced Symmetry Breaking Charge Separation [J].
Wega, Johannes .
CHIMIA, 2025, 79 (04) :263-266
[29]   Photoinduced Charge Separation in ZnO Quantum Dots and Carbon Nanomaterial Composites [J].
Shim, Jae Ho ;
Lee, Kyu Seung ;
Seo, Jin Won ;
Son, Dong Ick .
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2016, 16 (11) :12017-12020
[30]   Ultrafast polarisation spectroscopy of photoinduced charges in a conjugated polymer [J].
Bakulin, A. A. ;
Parashchuk, D. Yu. ;
van Loosdrecht, P. H. M. ;
Pshenichnikov, M. S. .
QUANTUM ELECTRONICS, 2009, 39 (07) :643-648