Cheng-Liang Liu
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Explore the profile of Cheng-Liang Liu including associated specialties, affiliations and a list of published articles.
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52
Citations
179
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Recent Articles
11.
Wang Y, Zhang M, Liu Z, Wu Y, Yan Q, Liu C, et al.
J Org Chem
. 2024 May;
89(11):7770-7779.
PMID: 38738957
A visible-light-enabled photoredox radical cascade cyclization of 2-vinyl benzimidazole derivatives is developed. This chemistry is applicable to a wide range of -aroyl 2-vinyl benzimidazoles as acceptors, and halo compounds, including...
12.
Tseng C, Wang K, Lin P, Chang C, Yeh L, Tung S, et al.
Small
. 2024 May;
20(37):e2401966.
PMID: 38733223
While research on organic thermoelectric polymers is making significant progress in recent years, realization of a single polymer material possessing both thermoelectric properties and stretchability for the next generation of...
13.
Lin H, Weng Y, Mulia T, Liu C, Lin Y, Yu Y, et al.
ACS Appl Mater Interfaces
. 2024 May;
16(19):25042-25052.
PMID: 38706304
Electrical double-layer transistors (EDLTs) have received extensive research attention owing to their exciting advantages of low working voltage, high biocompatibility, and sensitive interfacial properties in ultrasensitive portable sensing applications. Therefore,...
14.
Lee L, Huang K, Lin Y, Jeng U, Wang C, Tung S, et al.
Small
. 2024 Feb;
20(24):e2311811.
PMID: 38372500
Amid growing interest in using body heat for electricity in wearables, creating stretchable devices poses a major challenge. Herein, a hydrogel composed of two core constituents, namely the negatively-charged 2-acrylamido-2-methylpropanesulfonic...
15.
Neu Y, Lin Y, Weng Y, Chen W, Liu C, Lin B, et al.
ACS Appl Mater Interfaces
. 2024 Feb;
16(6):7500-7511.
PMID: 38300744
In recent years, organic photonic field-effect transistors have made remarkable progress with the rapid development of conjugated polycrystalline materials. Liquid crystals, with their smooth surface, defined layer thickness, and crystalline...
16.
Velusamy A, Afraj S, Guo Y, Ni J, Huang H, Su T, et al.
ACS Appl Mater Interfaces
. 2024 Jan;
16(5):6162-6175.
PMID: 38277509
Well-performing organic-inorganic halide perovskites are susceptible to poor efficiency and instability due to their various defects at the interphases, grain boundaries (GBs), and surfaces. In this study, an in situ...
17.
Chang Y, Huang Y, Lin P, Hong S, Tung S, Liu C
ACS Appl Mater Interfaces
. 2024 Jan;
16(3):3764-3777.
PMID: 38226590
Recent research efforts have concentrated on the development of flexible and stretchable thermoelectric (TE) materials. However, significant challenges have emerged, including increased resistance and reduced electrical conductivity when subjected to...
18.
Velusamy A, Chen Y, Lin M, Afraj S, Liu J, Chen M, et al.
Adv Sci (Weinh)
. 2023 Dec;
11(9):e2305361.
PMID: 38095532
This work presents a series of novel quinoidal organic semiconductors based on diselenophene-dithioalkylthiophene (DSpDST) conjugated cores with various side-chain lengths (-thiohexyl, -thiodecyl, and -thiotetradecyl, designated DSpDSTQ-6, DSpDSTQ-10, and DSpDSTQ-14, respectively)....
19.
Wang K, Lin P, Lin Y, Tung S, Chen W, Liu C
ACS Appl Mater Interfaces
. 2023 Nov;
15(48):56116-56126.
PMID: 38010815
This paper presents the development of thermoelectric properties in nanocomposites comprising donor-acceptor random conjugated copolymers and single-walled carbon nanotubes (SWCNTs). The composition of the conjugated polymers, specifically the ratio of...
20.
Lee C, Lin Y, Hong S, Wang C, Jeng U, Tung S, et al.
ACS Appl Mater Interfaces
. 2023 Nov;
15(48):56072-56083.
PMID: 37982689
Mixed ionic-electronic conducting (MIEC) thermoelectric (TE) materials offer higher ionic conductivity and ionic Seebeck coefficient compared to those of purely ionic-conducting TE materials. These characteristics make them suitable for direct...