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Merck
CN

754005

PCPDTBT

average Mw 7,000-20,000

别名:

聚[2,6-(4,4-双-(2-乙基己基)-4H-环戊二烯并[2,1-b;3,4-b′]二噻吩)-alt-4,7(2,1,3-苯并噻二唑)]

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关于此项目

线性分子式:
(C31H38N2S3)n
化学文摘社编号:
MDL number:
NACRES:
NA.23
UNSPSC Code:
12352103
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产品名称

PCPDTBT, average Mw 7,000-20,000

description

Band gap: 1.75 eV

form

solid

mol wt

average Mw 7,000-20,000

loss

0.5 wt. % TGA, 350 °C

mp

>400 °C

λmax

700 nm

orbital energy

HOMO -5.3 eV 
LUMO -3.55 eV 

OPV device performance

ITO/PEDOT:PSS/PCPDTBT:PC61BM/Al

  • Short-circuit current density (Jsc): 16.2 mA/cm2
  • Open-circuit voltage (Voc): 0.62 V
  • Fill Factor (FF): 0.55
  • Power Conversion Efficiency (PCE): 5.2 %

semiconductor properties

P-type (mobility=2×10−2 cm2/V·s)

Quality Level

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Application

PCPDTBT可以与PCBM形成供体/受体共混物,该共混物可用作制造有机太阳能电池的聚合物骨架。

General description

PCPDTBT是一种低带隙聚合物,可用作具有高光伏效率的供体材料。它可以与多种导电聚合物形成共混物,可用于增强电化学设备中的功率转换效率(PCE)。
可溶于环己烷、甲苯、氯仿和THF

存储类别

11 - Combustible Solids

wgk

WGK 3

flash_point_f

Not applicable

flash_point_c

Not applicable


历史批次信息供参考:

分析证书(COA)

Lot/Batch Number

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David Muhlbacher,
Advanced Materials, 18, 2884-2889 (2006)
An integrated experimental/theoretical study of structurally related poly-thiophenes used in photovoltaic systems
Vanossi D, et al.
Molecules (Basel), 21(1), 110-110 (2016)
Efficiency enhancement for bulk-heterojunction hybrid solar cells based on acid treated CdSe quantum dots and low bandgap polymer PCPDTBT
Zhou Y, et al.
Solar Energy Materials and Solar Cells, 95(4), 1232-1237 (2011)
Bulk heterojunction bipolar field-effect transistors processed with alkane dithiol
Cho S, et al.
Organic Electronics, 9(6), 1107-1111 (2008)
J Peet et al.
Nature materials, 6(7), 497-500 (2007-05-29)
High charge-separation efficiency combined with the reduced fabrication costs associated with solution processing and the potential for implementation on flexible substrates make 'plastic' solar cells a compelling option for tomorrow's photovoltaics. Attempts to control the donor/acceptor morphology in bulk heterojunction

商品

Thin, lightweight, and flexible electronic devices meet widespread demand for scalable, portable, and robust technology.

The development of high-performance conjugated organic molecules and polymers has received widespread attention in industrial and academic research.

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

Professor Chen (Nankai University, China) and his team explain the strategies behind their recent record-breaking organic solar cells, reaching a power conversion efficiency of 17.3%.

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