TY - JOUR
T1 - Effect of alkyl chain length of the ammonium groups in SEPC-CIL on the performance of polymer solar cells
AU - Chen, Youchun
AU - Zhang, Simin
AU - Peng, Qiming
AU - Wu, Lixin
AU - Li, Fenghong
AU - Wang, Yue
N1 - Publisher Copyright:
© 2017 The Royal Society of Chemistry.
PY - 2017
Y1 - 2017
N2 - In this study, we synthesized four alcohol-soluble surfactant-encapsulated polyoxometalate complexes (SEPCs) containing four tetra-n-alkyl ammonium groups, namely {[CH3(CH2)n-1]4N}4[SiW12O40] (TA-SiW12, n = 2, 4, 8, and 10), and investigated the effect of the alkyl chain length of TA-SiW12 as a cathode interlayer (CIL) on the performance of polymer solar cells (PSCs). Different alkyl chain lengths in the four TA-SiW12s resulted in different device performances. Highest power conversion efficiency (9.15%) was achieved for the PTB7:PC71BM-based PSC with TA-SiW12 (n = 8) due to its highest open circuit voltage (VOC), short circuit current (JSC), and fill factor (FF). Combined measurements of the capacitance-voltage characteristics, charge carrier mobility, and photocurrent density-effective voltage characteristics demonstrated that incorporation of TA-SiW12 (n = 8) resulted in higher built-in potential, charge carrier density, and mobility, and better charge carrier extraction as compared to that of other TA-SiW12 (n = 2, 4, and 10) in the PSCs. AFM images showed that only TA-SiW12 (n = 8) formed homogeneous, closely packed, and well-distributed grain clusters with a quasi-periodic structure on the active layer, which explains the higher JSC and FF of the PSC with TA-SiW12 (n = 8).
AB - In this study, we synthesized four alcohol-soluble surfactant-encapsulated polyoxometalate complexes (SEPCs) containing four tetra-n-alkyl ammonium groups, namely {[CH3(CH2)n-1]4N}4[SiW12O40] (TA-SiW12, n = 2, 4, 8, and 10), and investigated the effect of the alkyl chain length of TA-SiW12 as a cathode interlayer (CIL) on the performance of polymer solar cells (PSCs). Different alkyl chain lengths in the four TA-SiW12s resulted in different device performances. Highest power conversion efficiency (9.15%) was achieved for the PTB7:PC71BM-based PSC with TA-SiW12 (n = 8) due to its highest open circuit voltage (VOC), short circuit current (JSC), and fill factor (FF). Combined measurements of the capacitance-voltage characteristics, charge carrier mobility, and photocurrent density-effective voltage characteristics demonstrated that incorporation of TA-SiW12 (n = 8) resulted in higher built-in potential, charge carrier density, and mobility, and better charge carrier extraction as compared to that of other TA-SiW12 (n = 2, 4, and 10) in the PSCs. AFM images showed that only TA-SiW12 (n = 8) formed homogeneous, closely packed, and well-distributed grain clusters with a quasi-periodic structure on the active layer, which explains the higher JSC and FF of the PSC with TA-SiW12 (n = 8).
UR - http://www.scopus.com/inward/record.url?scp=85026243813&partnerID=8YFLogxK
U2 - 10.1039/c7ta04530a
DO - 10.1039/c7ta04530a
M3 - 文章
AN - SCOPUS:85026243813
SN - 2050-7488
VL - 5
SP - 15294
EP - 15301
JO - Journal of Materials Chemistry A
JF - Journal of Materials Chemistry A
IS - 29
ER -