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Chi-Yuan Yang

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Articles 34
Citations 287
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Recent Articles
1.
Ruoko T, Stoeckel M, Puttreddy R, Yang C, Zhang S, Wu Z, et al.
Angew Chem Int Ed Engl . 2025 Mar; :e202424979. PMID: 40079727
The solid-state structure and morphology of organic semiconductors are critical in determining the performance of organic electronic devices, as they directly influence charge carrier mobility. Improved molecular packing and ordering...
2.
Liu T, Beket G, Li Q, Zhang Q, Jeong S, Yang C, et al.
Adv Sci (Weinh) . 2024 Aug; 11(40):e2405676. PMID: 39207046
Transparent electrodes (TEs) are vital in optoelectronic devices, enabling the interaction of light and charges. While indium tin oxide (ITO) has traditionally served as a benchmark TE, its high cost...
3.
Tang H, Liang Y, Yang C, Luo X, Yu J, Zhang K, et al.
Mater Horiz . 2024 Aug; 11(21):5419-5428. PMID: 39188189
High-performance n-type organic mixed ionic-electronic conductors (OMIECs) are essential for advancing complementary circuits based on organic electrochemical transistors (OECTs). Despite significant progress, current n-type OMIECs often exhibit lower transconductance and...
4.
Li Q, Huang J, Liu T, van der Pol T, Zhang Q, Jeong S, et al.
J Am Chem Soc . 2024 May; 146(23):15860-15868. PMID: 38814791
Poly(3,4-ethylenedioxythiophene):poly(styrenesulfonate) (PEDOT:PSS) is a benchmark hole-transporting (-type) polymer that finds applications in diverse electronic devices. Most of its success is due to its facile synthesis in water, exceptional processability from...
5.
Stoeckel M, Feng K, Yang C, Liu X, Li Q, Liu T, et al.
Angew Chem Int Ed Engl . 2024 May; 63(33):e202407273. PMID: 38770935
A new approach to control the n-doping reaction of organic semiconductors is reported using surface-functionalized gold nanoparticles (f-AuNPs) with alkylthiols acting as the catalyst only upon mild thermal activation. To...
6.
Jin W, Yang C, Pau R, Wang Q, Tekelenburg E, Wu H, et al.
Nature . 2024 May; 630(8015):96-101. PMID: 38750361
Chemical doping is an important approach to manipulating charge-carrier concentration and transport in organic semiconductors (OSCs) and ultimately enhances device performance. However, conventional doping strategies often rely on the use...
7.
Liu T, Heimonen J, Zhang Q, Yang C, Huang J, Wu H, et al.
Nat Commun . 2023 Dec; 14(1):8454. PMID: 38114560
Water-based conductive inks are vital for the sustainable manufacturing and widespread adoption of organic electronic devices. Traditional methods to produce waterborne conductive polymers involve modifying their backbone with hydrophilic side...
8.
Wu H, Huang J, Jeong S, Liu T, Wu Z, van der Pol T, et al.
Mater Horiz . 2023 Jul; 10(10):4213-4223. PMID: 37477499
Organic electrochemical transistors (OECTs) are a rapidly advancing technology that plays a crucial role in the development of next-generation bioelectronic devices. Recent advances in p-type/n-type organic mixed ionic-electronic conductors (OMIECs)...
9.
Zhou Y, Xu Y, Yao Z, Li J, Pan C, Lu Y, et al.
Nat Commun . 2023 Jun; 14(1):3340. PMID: 37286537
It remains challenging to understand the structural evolution of conjugated polymers from single chains to solvated aggregates and film microstructures, although it underpins the performance of optoelectrical devices fabricated via...
10.
Ding L, Yu Z, Wang X, Yao Z, Lu Y, Yang C, et al.
Chem Rev . 2023 May; 123(12):7421-7497. PMID: 37232480
Polymer semiconductors composed of a carbon-based π conjugated backbone have been studied for several decades as active layers of multifarious organic electronic devices. They combine the advantages of the electrical...