Charge Transport Advancement in Anti‐Ambipolar Transistors: Spatially Separating Layer Sandwiched between N‐Type Metal Oxides and P‐Type Small Molecules

Author:

Han Youngmin1,Lee Subin1,Kim Minseo1,Shin Wonjun2,Lee Ho kyung3,Koo Ryun‐Han2,Lee Sung‐Tae4,Kim Chang‐Hyun5ORCID,Yoo Hocheon1ORCID

Affiliation:

1. Department of Electronic Engineering Gachon University 1342 Seongnam‐daero Seongnam 13120 Republic of Korea

2. Inter‐University Semiconductor Research Center Department of Electrical and Computer Engineering Seoul National University Seoul 08826 Republic of Korea

3. Smart Materials Research Center for IoT Gachon University 1342 Seongnamdaero, Sujeong‐Gu Seongnam‐Si Gyeonggi 13120 Republic of Korea

4. School of Electronic and Electrical Engineering Hongik University Seoul 04066 Republic of Korea

5. School of Electrical Engineering and Computer Science University of Ottawa Ottawa ON K1N 6N5 Canada

Abstract

AbstractInterface issues with organic semiconductors on metal oxide challenge realizing a high‐performance anti‐ambipolar transistor (AAT) with stable operation. The motivation behind this research delves into the intricate landscape of AATs, elucidating their envisioned applications and constituent materials. Central to the authors, discourse is the pivotal role that fluoropolymers assume, acting as a bridge uniting n‐type metal oxide semiconductors (n‐oxide) with p‐type organic semiconductors (p‐organic), thereby unveiling a hitherto concealed facet of transistor advancement. Adopting a spatially separating layer (SSL) between p‐ and n‐type semiconductors of AAT is unconventional, but this p‐organic/SSL/n‐oxide junction (pSn) AAT exhibits stable operation also 215 days after fabrication and minimal hysteresis, which is 13.67 times smaller than a conventional p‐organic/n‐oxide junction (pn) AAT. The effect of SSL is closely studied through comparisons of the performance of single‐type transistors, trap density, and carrier behavior, which define the order of 1/f at low‐frequency noise analysis. In addition, the contribution of SSL is confirmed via the channel formation mechanism of AAT investigated through a two‐dimensional (2D) finite‐element simulation. The operation stability of pSn AAT is evaluated through combined stress tests, long‐term stability tests, and transient response tests. This research proposes SSL as a new design parameter to improve the AAT.

Funder

National Research Foundation of Korea

Publisher

Wiley

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