Synthesis of low-bandgap small molecules by extending the π-conjugation of the termini in quinoidal compounds
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Jie Ren | Ziqi Liang | Yunfeng Deng | Tian Du | Cheng Wang | Jia-Ying Zhu
[1] Di Wu,et al. Tuning Biradical Character to Enable High and Balanced Ambipolar Charge Transport in a Quinoidal π-System. , 2020, Organic letters.
[2] P. Blom,et al. Effects of fluorine substitution in quinoidal oligothiophenes for use as organic semiconductors , 2020 .
[3] H. Tian,et al. Electronic properties modulation of tetraoxidothieno[3,2-b]thiophene-based quinoidal compounds by terminal fluorination , 2020 .
[4] Y. Geng,et al. Indandione-terminated Quinoids:Facile Synthesis by Alkoxide-mediated Rearrangement Reaction and Semiconducting Properties. , 2019, Angewandte Chemie.
[5] Y. Ie,et al. Quinoidal Oligothiophenes Having Full Benzene Annelation: Synthesis, Properties, Structures, and Acceptor Application in Organic Photovoltaics. , 2019, Organic letters.
[6] Zhongli Wang,et al. Diketopyrrolopyrrole-based small molecules for solution-processed n-channel organic thin film transistors , 2019, Journal of Materials Chemistry C.
[7] D. Ding,et al. Boosting Fluorescence-Photoacoustic-Raman Properties in One Fluorophore for Precise Cancer Surgery , 2019, Chem.
[8] Yuning Li,et al. Synthesis of an isomerically pure thienoquinoid for unipolar n-type conjugated polymers: effect of backbone curvature on charge transport performance , 2019, Journal of Materials Chemistry C.
[9] Hongxiang Li,et al. Fluorine-substituted quinoidal thiophene with a F-H hydrogen bond locked conformation for high-performance n-channel organic transistors. , 2019, Chemical communications.
[10] Yunqi Liu,et al. Design and synthesis of high performance π-conjugated materials through antiaromaticity and quinoid strategy for organic field-effect transistors , 2019, Materials Science and Engineering: R: Reports.
[11] Kohsuke Kawabata,et al. Thienoquinoidal System: Promising Molecular Architecture for Optoelectronic Applications , 2018, Journal of Synthetic Organic Chemistry, Japan.
[12] B. Tang,et al. Single-Molecular Near-Infrared-II Theranostic Systems: Ultrastable Aggregation-Induced Emission Nanoparticles for Long-Term Tracing and Efficient Photothermal Therapy. , 2018, ACS nano.
[13] Xiaoyuan Chen,et al. Rational design of a super-contrast NIR-II fluorophore affords high-performance NIR-II molecular imaging guided microsurgery , 2018, Chemical science.
[14] R. Prevedel,et al. Aggregation-Induced Emission Luminogen with Near-Infrared-II Excitation and Near-Infrared-I Emission for Ultradeep Intravital Two-Photon Microscopy. , 2018, ACS nano.
[15] P. Blom,et al. Oligothiophene quinoids containing a benzo[c]thiophene unit for the stabilization of the quinoidal electronic structure , 2018 .
[16] J. Pei,et al. Control of π–π Stacking via Crystal Engineering in Organic Conjugated Small Molecule Crystals , 2018 .
[17] I. Osaka,et al. Dithienyl Acenedithiophenediones as New π-Extended Quinoidal Cores: Synthesis and Properties. , 2017, Chemistry.
[18] Zhen Cheng,et al. Novel bright-emission small-molecule NIR-II fluorophores for in vivo tumor imaging and image-guided surgery , 2017, Chemical science.
[19] I. McCulloch,et al. Avoid the kinks when measuring mobility , 2016, Science.
[20] Chu Tang,et al. Novel benzo-bis(1,2,5-thiadiazole) fluorophores for in vivo NIR-II imaging of cancer† †Electronic supplementary information (ESI) available. See DOI: 10.1039/c6sc01561a , 2016, Chemical science.
[21] S. Wheeler,et al. Low Band Gap Coplanar Conjugated Molecules Featuring Dynamic Intramolecular Lewis Acid-Base Coordination. , 2016, The Journal of organic chemistry.
[22] A. Makino,et al. Diradical Character Tuning for the Third-Order Nonlinear Optical Properties of Quinoidal Oligothiophenes by Introducing Thiophene-S,S-dioxide Rings. , 2016, Chemistry.
[23] Xueliang Shi,et al. Dipolar Quinoidal Acene Analogues as Stable Isoelectronic Structures of Pentacene and Nonacene. , 2015, Angewandte Chemie.
[24] Yang Yang,et al. Low-Bandgap Near-IR Conjugated Polymers/Molecules for Organic Electronics. , 2015, Chemical reviews.
[25] QUAN LIU,et al. A narrow-bandgap benzobisthiadiazole derivative with high near-infrared photothermal conversion efficiency and robust photostability for cancer therapy. , 2015, Chemical communications.
[26] C. Adachi,et al. π‐Extended Narrow‐Bandgap Diketopyrrolopyrrole‐Based Oligomers for Solution‐Processed Inverted Organic Solar Cells , 2014 .
[27] Takehiko Mori,et al. The impact of molecular planarity on electronic devices in thienoisoindigo-based organic semiconductors , 2014 .
[28] 李洪祥,et al. Five-Ring Fused Tetracyanothienoquinoids as High-Performance and Solution-Processable n-Channel Organic Semiconductors: Effect of the Branching Position of Alkyl Chains , 2014 .
[29] Hua Lu,et al. Structural modification strategies for the rational design of red/NIR region BODIPYs. , 2014, Chemical Society reviews.
[30] Junbiao Peng,et al. Solution-processed bulk heterojunction solar cells based on a porphyrin small molecule with 7% power conversion efficiency , 2014 .
[31] Weiwei Li,et al. Effect of structure on the solubility and photovoltaic properties of bis-diketopyrrolopyrrole molecules , 2013 .
[32] Christopher M. Proctor,et al. Tri‐Diketopyrrolopyrrole Molecular Donor Materials for High‐Performance Solution‐Processed Bulk Heterojunction Solar Cells , 2013, Advanced materials.
[33] S. Jenekhe,et al. High-mobility n-type conjugated polymers based on electron-deficient tetraazabenzodifluoranthene diimide for organic electronics. , 2013, Journal of the American Chemical Society.
[34] Renqiang Yang,et al. A new isoindigo-based molecule with ideal energy levels for solution-processable organic solar cells , 2013 .
[35] S. Jenekhe,et al. Tetraazabenzodifluoranthene diimides: building blocks for solution-processable n-type organic semiconductors. , 2013, Angewandte Chemie.
[36] J. T. López Navarrete,et al. Quinoidal oligothiophenes: new properties behind an unconventional electronic structure. , 2012, Chemical Society reviews.
[37] S. Jenekhe,et al. Design of New Electron Acceptor Materials for Organic Photovoltaics: Synthesis, Electron Transport, Photophysics, and Photovoltaic Properties of Oligothiophene-Functionalized Naphthalene Diimides , 2011 .
[38] Marta Mas-Torrent,et al. Role of molecular order and solid-state structure in organic field-effect transistors. , 2011, Chemical reviews.
[39] I. Osaka,et al. Quinoidal Oligothiophenes with (Acyl)cyanomethylene Termini: Synthesis, Characterization, Properties, and Solution Processed n-Channel Organic Field-Effect Transistors† , 2011 .
[40] K. Takimiya,et al. ((Alkyloxy)carbonyl)cyanomethylene-substituted thienoquinoidal compounds: a new class of soluble n-channel organic semiconductors for air-stable organic field-effect transistors. , 2010, Journal of the American Chemical Society.
[41] Gang Qian,et al. Near-infrared organic compounds and emerging applications. , 2010, Chemistry, an Asian journal.
[42] Gang Qian,et al. Synthesis and Application of Thiadiazoloquinoxaline-Containing Chromophores as Dopants for Efficient Near-Infrared Organic Light-Emitting Diodes , 2009 .
[43] Xugang Guo,et al. Conjugated polymers from naphthalene bisimide. , 2008, Organic letters.
[44] Thuc‐Quyen Nguyen,et al. Small molecule sensitizers for near-infrared absorption in polymer bulk heterojunction solar cells , 2008 .
[45] Gang Qian,et al. Band Gap Tunable, Donor−Acceptor−Donor Charge-Transfer Heteroquinoid-Based Chromophores: Near Infrared Photoluminescence and Electroluminescence , 2008 .
[46] Jean Roncali,et al. Molecular Engineering of the Band Gap of π-Conjugated Systems: Facing Technological Applications , 2007 .
[47] Michael W. Burand,et al. Exploration of ground and excited electronic states of aromatic and quinoid S,S-dioxide terthiophenes. Complementary systems for enhanced electronic organic materials. , 2006, Journal of the American Chemical Society.
[48] Y. Aso,et al. Extensive quinoidal oligothiophenes with dicyanomethylene groups at terminal positions as highly amphoteric redox molecules. , 2005, Journal of the American Chemical Society.
[49] J. Brédas,et al. Relationship between band gap and bond length alternation in organic conjugated polymers , 1985 .
[50] Hongxiang Li,et al. Thiophene quinoidal organic semiconductors for high performance n-channel organic field-effect transistors , 2016 .
[51] Renqiang Yang,et al. Near-infrared response thienoisoindigo-based small molecule for solution-processed bulk-heterojunction solar cells , 2014 .