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Influence of Molecular Weight on the Organic Electrochemical Transistor Performance of Ladder-Type Conjugated Polymers

Authors
Wu, Han-YanYang, Chi-YuanLi, QifanKolhe, Nagesh B.Strakosas, XenofonStoeckel, Marc-AntoineWu, ZiangJin, WenlongSavvakis, MariosKroon, ReneeTu, DeyuWoo, Han YoungBerggren, MagnusJenekhe, Samson A.Fabiano, Simone
Issue Date
1월-2022
Publisher
WILEY-V C H VERLAG GMBH
Keywords
complementary circuits; inverters; molecular weight; n-type polymers; organic electrochemical transistors; organic mixed ionic-electronic conductors
Citation
ADVANCED MATERIALS, v.34, no.4
Indexed
SCIE
SCOPUS
Journal Title
ADVANCED MATERIALS
Volume
34
Number
4
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/136558
DOI
10.1002/adma.202106235
ISSN
0935-9648
Abstract
Organic electrochemical transistors (OECTs) hold promise for developing a variety of high-performance (bio-)electronic devices/circuits. While OECTs based on p-type semiconductors have achieved tremendous progress in recent years, n-type OECTs still suffer from low performance, hampering the development of power-efficient electronics. Here, it is demonstrated that fine-tuning the molecular weight of the rigid, ladder-type n-type polymer poly(benzimidazobenzophenanthroline) (BBL) by only one order of magnitude (from 4.9 to 51 kDa) enables the development of n-type OECTs with record-high geometry-normalized transconductance (g(m,norm) approximate to 11 S cm(-1)) and electron mobility x volumetric capacitance (mu C* approximate to 26 F cm(-1) V-1 s(-1)), fast temporal response (0.38 ms), and low threshold voltage (0.15 V). This enhancement in OECT performance is ascribed to a more efficient intermolecular charge transport in high-molecular-weight BBL than in the low-molecular-weight counterpart. OECT-based complementary inverters are also demonstrated with record-high voltage gains of up to 100 V V-1 and ultralow power consumption down to 0.32 nW, depending on the supply voltage. These devices are among the best sub-1 V complementary inverters reported to date. These findings demonstrate the importance of molecular weight in optimizing the OECT performance of rigid organic mixed ionic-electronic conductors and open for a new generation of power-efficient organic (bio-)electronic devices.
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