Pular para o conteúdo
Merck
Todas as fotos(2)

Documentos Principais

911135

Sigma-Aldrich

TU-3

Sinônimo(s):

4,4′-(2λ4δ2-benzo[1,2-c:4,5-c′]bis[1,2,5]thiadiazole-4,8-diyldi-5,2-thiophenediyl)bis[2-dodecylbenzonitrile], 4,8-Bis [5-(4-cyano-3-alkylphenyl)-2-thienyl] benzo[1,2-c:4,5-c′] bis [1,2,5] thiadiazole

Faça loginpara ver os preços organizacionais e de contrato


About This Item

Fórmula empírica (Notação de Hill):
C52H60N6S4
Número CAS:
Peso molecular:
897.33
Código UNSPSC:
12352103
NACRES:
NA.23

descrição

Decomposition temperature: 371 °C (Decomposition start temperature)
mobility = 2.3 cm2 / Vs (@Vsd=100V)
on / off ratio = 107
Structure: BG-TC @ SiO2 / Si
electrode: Au
film: TU-3 / CHCl3 spin coat

Ensaio

≥99% (HPLC)

forma

powder

peso molecular

897.33 g/mol

cor

dark green

pf

291 °C

temperatura de armazenamento

2-8°C

Aplicação

TU-3 is a n-type organic semiconductor material with long term (year-long) stability in air. And it can be deposited from its solutions to form felxible integrated circuits in either 2D or 3D configurations.
This material achieves a high electron mobility of 2.3 cm2/Vs or more in transistors, making it highly suitable for this application. The mobility of amorphous silicon used in general LCDs and other applications is about 0.5-1cm2/Vs.

Informações legais

Organic thin film transistor containing benzobis(thiadiazole) derivatives for organic electronic device by Tanaka, Yasuhiro; Kakita, Kazunari; Machida, Toshikazu From Jpn. Kokai Tokkyo Koho (2017), JP 2017079319 A 20170427.

Código de classe de armazenamento

11 - Combustible Solids

Classe de risco de água (WGK)

WGK 3

Ponto de fulgor (°F)

Not applicable

Ponto de fulgor (°C)

Not applicable


Escolha uma das versões mais recentes:

Certificados de análise (COA)

Lot/Batch Number

Lamentamos, não temos COA para este produto disponíveis online no momento.

Se precisar de ajuda, entre em contato Atendimento ao cliente

Já possui este produto?

Encontre a documentação dos produtos que você adquiriu recentemente na biblioteca de documentos.

Visite a Biblioteca de Documentos

Organic Complementary Inverter Circuits Fabricated with Reverse Offset Printing
Takeda Y, et al.
Advanced Electronic Materials, 4(1), 1700313-1700313 (2018)
A Unique Solution-Processable n-Type Semiconductor Material Design for High-Performance Organic Field-Effect Transistors
Mamada, et al.
Chemistry of Materials, 27, 141-141 (2015)
Yasunori Takeda et al.
Scientific reports, 6, 25714-25714 (2016-05-10)
Ultrathin electronic circuits that can be manufactured by using conventional printing technologies are key elements necessary to realize wearable health sensors and next-generation flexible electronic devices. Due to their low level of power consumption, complementary (CMOS) circuits using both types
Compact Organic Complementary D-Type Flip-Flop Circuits Fabricated with Inkjet Printing
Kazuma H, et al
Advanced Electronic Materials, 3(9), 1700208-1700208 (2019)
Jimin Kwon et al.
Nature communications, 10(1), 54-54 (2019-01-04)
Direct printing of thin-film transistors has enormous potential for ubiquitous and lightweight wearable electronic applications. However, advances in printed integrated circuits remain very rare. Here we present a three-dimensional (3D) integration approach to achieve technology scaling in printed transistor density

Artigos

Professor Tokito and Professor Takeda share their new materials, device architecture design principles, and performance optimization protocols for printed and solution-processed, low-cost, highly flexible, organic electronic devices.

Conteúdo relacionado

Organic electronics utilizes organic conductors and semiconductors for applications in organic photovoltaics, organic light-emitting diodes, and organic field-effect transistors.

Nossa equipe de cientistas tem experiência em todas as áreas de pesquisa, incluindo Life Sciences, ciência de materiais, síntese química, cromatografia, química analítica e muitas outras.

Entre em contato com a assistência técnica