Environmental Engineering Reference
In-Depth Information
70. Zhang FJ, Sun FY, Shi YZ et al (2010) Effect of an ultra-thin molybdenum trioxide layer
and illumination intensity on the performance of organic photovoltaic devices. Energy Fuels
24:3739-3742
71. Wang FX, Qiao XF, Xiong T et al (2008) The role of molybdenum oxide as anode
interfacial
modification
in
the
improvement
of
efficiency
and
stability
in
organic
light-emitting diodes. Org Electron 9:985-993
72. Sun Y, Takacs CJ, Cowan SR et al (2011) Efficient, air-stable bulk heterojunction polymer
solar cells using moox as the anode interfacial layer. Adv Mater 23:2226-2230
73. Chen LM, Hong ZR, Li G et al (2009) Recent progress in polymer solar cells: manipulation
of polymer: fullerene morphology and the formation of efficient inverted polymer solar
cells. Adv Mater 21:1434-1449
74. Tao C, Ruan SP, Zhang XD et al (2008) Performance improvement of inverted polymer
solar cells with different top electrodes by introducing a MoO3 buffer layer. Appl Phys Lett
93:193307
75. Hau SK, Yip HL, Ma H et al (2008) High performance ambient processed inverted polymer
solar cells through interfacial modification with a fullerene self-assembled monolayer. Appl
Phys Lett 93:233304
76. Kyaw AKK, Sun XW, Jiang CY et al (2008) An inverted organic solar cell employing a
sol-gel derived ZnO electron selective layer and thermal evaporated MoO3 hole selective
layer. Appl Phys Lett 93:221107
77. Li G, Chu CW, Shrotriya V et al (2006) Efficient inverted polymer solar cells. Appl Phys
Lett 88:253503
78. Liao HH, Chen LM, Xu Z et al (2008) Highly efficient inverted polymer solar cell by low
temperature annealing of Cs2CO3 interlayer. Appl Phys Lett 92:173303
79. Krebs FC (2009) All solution roll-to-roll processed polymer solar cells free from indium-
tin-oxide and vacuum coating steps. Org Electron 10:761-768
80. Krebs FC (2009) Polymer solar cell modules prepared using roll-to-roll methods:
Knife-over-edge coating, slot-die coating and screen printing. Sol Energy Mater Sol Cells
93:465-475
81. Krebs FC, Jorgensen M, Norrman K et al (2009) A complete process for production of
flexible
large
area
polymer
solar
cells
entirely
using
screen
printing-First
public
demonstration. Sol Energy Mater Sol Cells 93:422-441
82. Sahin Y, Alem S, de Bettignies R et al (2005) Development of air stable polymer solar cells
using an inverted gold on top anode structure. Thin Solid Films 476:340-343
83. Hau SK, Yip HL, Baek NS et al (2008) Air-stable inverted flexible polymer solar cells using
zinc oxide nanoparticles as an electron selective layer. Appl Phys Lett 92:253301
84. Liu JP, Wang SS, Bian ZQ et al (2009) Inverted photovoltaic device based on ZnO and
organic small molecule heterojunction. Chem Phys Lett 470:103-106
85. Kuwabara T, Nakayama T, Uozumi K et al (2008) Highly durable inverted-type organic
solar cell using amorphous titanium oxide as electron collection electrode inserted between
ITO and organic layer. Sol Energy Mater Sol Cells 92:1476-1482
86. Steim R, Choulis SA, Schilinsky P et al (2008) Interface modification for highly efficient
organic photovoltaics. Appl Phys Lett 92:093303
87. Tao C, Ruan SP, Xie GH et al (2009) Role of tungsten oxide in inverted polymer solar cells.
Appl Phys Lett 94:043311
88. Ameri T, Dennler G, Waldauf C et al (2008) Realization, characterization, and optical
modeling of inverted bulk-heterojunction organic solar cells. J Appl Phys 103:084506
89. Zimmermann B, Wurfel U, Niggemann M (2009) Longterm stability of efficient inverted
P3HT:PCBM solar cells. Sol Energy Matter Sol Cells 93:491-496
90. Lee JK, Cho JM, Shin WS et al (2008) The stability of PEDOT: PSS films monitored by
electron spin resonance. J Korean Phys Soc 52:621-626
91. Chang YM, Su WF, Wang L (2008) Influence of photo-induced degradation on the
optoelectronic properties of regioegular poly(3-hexylthiophene). Sol Energy Matter Sol
Cells 92:761-765
Search WWH ::




Custom Search