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Merck

704326

Sigma-Aldrich

[6.6]二苯基C62双(丁酸甲酯)(异构体混合物)

99.5%

别名:

Bis[60]PCBM, 双(1-[3-(甲氧羰基)丙基]-1-苯基)-[6.6]C62(异构体混合物)

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About This Item

经验公式(希尔记法):
C84H28O4
分子量:
1101.12
UNSPSC代码:
12352103
NACRES:
NA.23

质量水平

方案

99.5%

表单

solid

mp

>300 °C

溶解性

organic solvents: soluble

SMILES字符串

COC(=O)CCCC2(c1ccccc1)C34c5c6c7c8c9c%10c(c%11c%12c3c%13c5c%14c%15c6c%16c7c%17c9c%18c%19c%20c%21c%22c%23c%24c%25c%26c%27c%28c%29c(c%20c%30c%18c%10c%31c%11c%32c%12c%33c%13c(c%26c%33c%28c%32c%29c%30%31)c%14c%25c%15c%23c%16c%22c%17%19)C%21%34C(CCCC(=O)OC)(c%35ccccc%35)C%24%27%34)C248

一般描述

Bis[60]PCBM is a fullerene derivative.
[6.6] Diphenyl C62bis(butyric acid methyl ester)(mixture of isomers) (bis-[60]PCBM) is a fullerene based acceptor molecule that is a bis analog of PCBM. It can be used in polymeric solar cells to improve the open circuit voltage (Voc).

应用

可溶性 n 沟道有机半导体。用于聚合物:富勒烯本体异质结太阳能电池。

储存分类代码

11 - Combustible Solids

WGK

WGK 3

闪点(°F)

Not applicable

闪点(°C)

Not applicable


历史批次信息供参考:

分析证书(COA)

Lot/Batch Number

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其他客户在看

Material solubility effects in bulk heterojunction solar cells based on the bis-cyclopropane fullerene adducts and P3HT
Susarova DK, et al.
Solar Energy Materials and Solar Cells, 120(17), 30-36 (2014)
M. Lenes, G.AH. Weltzelaer, F.B. Kooistra, S.C. Veenstra, J.C. Hummelen, P.W.M. Blom
Advanced Mat., 20, 2116-2116 (2008)
Isomer-Pure Bis-PCBM-Assisted Crystal Engineering of Perovskite Solar Cells Showing Excellent Efficiency and Stability
Zhang F, et al.
Advanced Materials, 29(17), 1606806-1606806 (2017)
Purification and electronic characterisation of 18 isomers of the OPV acceptor material bis-[60] PCBM
Shi W, et al.
Chemical Communications (Cambridge, England), 53(5), 975-978 (2017)

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Progress in bulk heterojunction photodiodes since 1995 has improved device performance and widened research scope.

Find various photovoltaic and bioscience-based applications of fullerenes.

Organic materials in optoelectronic devices like LEDs and solar cells are of significant academic and commercial interest.

SWCNTs show promise in FETs, solar cells, and photodetectors due to their ultrafast charge transport mobility.

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