Switching charge-transfer characteristics from p-type to n-type through molecular "doping" (co-crystallization)

Borrowing an idea from the silicon industry, where the charge-carrier's characteristics can be changed through heteroatom implantation, we believe that the charge transport nature of organic semiconductors can be switched through molecular "doping" (co-crystallization). Here, we repor...

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Veröffentlicht in:Chemical science (Cambridge) 2016-01, Vol.7 (6), p.3851-3856
Hauptverfasser: Zhang, Jing, Gu, Peiyang, Long, Guankui, Ganguly, Rakesh, Li, Yongxin, Aratani, Naoki, Yamada, Hiroko, Zhang, Qichun
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Sprache:eng
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Zusammenfassung:Borrowing an idea from the silicon industry, where the charge-carrier's characteristics can be changed through heteroatom implantation, we believe that the charge transport nature of organic semiconductors can be switched through molecular "doping" (co-crystallization). Here, we report a novel molecule 2,7-di- -butyl-10,14-di(thiophen-2-yl)phenanthro[4,5- ][1,2,5]thiadiazolo[3,4- ]phenazine (DTPTP), which originally is a p-type (0.3 cm V s ) compound, and can be switched to an n-type semiconductor (DTPTP -TCNQ, 3 × 10 cm V s under air conditions) through tetracyanoquinodimethane (TCNQ) doping (co-crystallization). Single crystal X-ray studies revealed that TCNQ-doped DTPTP complexes (DTPTP -TCNQ) adopt a dense one-dimensional (1D) mixed π-π stacking mode with a ratio of DTPTP and TCNQ of 2 : 1, while pure DTPTP molecules utilize a herringbone-packing pattern. Interestingly, theoretical analysis suggested that there is a quasi-2D electron transport network in this host-guest system. Our research results might provide a new strategy, to switch the charge transport characteristics of an original system by appropriate molecular "doping" (co-crystal engineering).
ISSN:2041-6520
2041-6539
DOI:10.1039/c5sc04954g