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[11]Acceptor-donor-acceptor molecule processed using polar non-halogenated solvents for organic field-effect transistors, Journal of Materials Chemistry C, 2020, 8, 6496-6502.
[12]Fused heptacyclic-based acceptor−donor−acceptor small molecules: n-substitution toward high-performance solutionprocessable field-effect transistors, Chemistry of Materials, 2019, 31, 2027-2035.
[13]Side-chain engineering to optimize the charge transport properties of isoindio-based random terpolymers for high-performances organic field-effect transistors, Macromolecules, 2019, 52, 4765-4775.
[14]High-efficiency synthesis of a naphthalene-diimide-based conjugated polymer using continuous flow technology for organic field-effect transistors, Journal of Materials Chemistry C, 2019, 7, 8450-8456.
[15]Tuning the energy levels of aza-heterocycle-based polymers for long-term n-channel bottom-gate/top-contact polymer transistors, Macromolecules, 2018, 51, 5704-5712.
[16]Incorporation of heteroatoms in conjugated polymers backbone toward air-stable, high-performance n-channel unencapsulated polymer transistors, Chemistry of Materials, 2018, 30, 5451-5459.
[17]Improved transistor performance of isoindigo-based conjugated polymers by chemically blending strongly electron-deficient units with low content to optimize crystal structure, Macromolecules, 2018, 51, 370-378.
[18]Bis(7-aza-2-oxoindolin-3-ylidene)dihydropyrroloindole-dione based D−A conjugated polymers for electron and ambipolar organic thin film transistors, Dyes and Pigments, 2018, 159, 238-244.
[19]Synthesis and characterization of thieno-isoindigo derivative-based near-infrared conjugated polymer for ambipolar field-effect transistors and photothermal conversion, Dyes and Pigments, 2017, 147, 175-182.
[20]Synthesis and optimization solid-state order using side-chain position of thieno-isoindigo derivative-based D–A polymers for high-performance ambipolar organic thin films transistors, Dyes and Pigments, 2017, 137, 221-228.
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