
|
邱龍臻 |
| |
| |
| |
lzhqiu@hfut.edu.cn | |
|
個(gè)人簡(jiǎn)歷
2012至今,合肥工業(yè)大學(xué),光電技術(shù)研究院,研究員
2009-2012,合肥工業(yè)大學(xué),光電技術(shù)研究院,副研究員
2008-2009,美國(guó)加州大學(xué)洛杉磯分校,機(jī)械與航天工程系,博士后
2006-2008,韓國(guó)浦項(xiàng)工科大學(xué),化學(xué)工程系,博士后
2001-2006,中國(guó)科學(xué)技術(shù)大學(xué),高分子科學(xué)與工程系,研究生/理學(xué)博士,導(dǎo)師:瞿保鈞教授
1997-2001, 中國(guó)科學(xué)技術(shù)大學(xué),高分子科學(xué)與工程系,本科/理學(xué)學(xué)士
主要研究領(lǐng)域、方向
課題組從事光電材料及器件研究,主要包括(1)柔性/彈性電子技術(shù)(2)人工突觸電子器件(3)印刷電子技術(shù)(4)有機(jī)傳感器等。
研究成果(代表性成果)
主要從事有機(jī)光電材料及器件研究,以及有機(jī)半導(dǎo)體在薄膜晶體管、存儲(chǔ)器等領(lǐng)域的應(yīng)用。先后承擔(dān)科技部973項(xiàng)目、國(guó)家自然科學(xué)基金、教育部新世紀(jì)優(yōu)秀人才支持計(jì)劃等研究課題。在Adv. Mater.、Nano Letters, Chem. Mater.、Macromolecules、Biosens. Bioelectron.等國(guó)內(nèi)外主要學(xué)術(shù)期刊發(fā)表論文100多篇,授權(quán)專利十多項(xiàng)。
目前承擔(dān)科研項(xiàng)目
1、有機(jī)場(chǎng)效應(yīng)晶體管高性能化與功能化研究(1808085J03),安徽省杰出青年科學(xué)基金,2018.7-2021.6
2、高性能顯示視窗玻璃的研制,臨泉縣-合工大政產(chǎn)學(xué)研產(chǎn)業(yè)創(chuàng)新引導(dǎo)項(xiàng)目,2020.1-2021.12
3、基于分子印跡半導(dǎo)體復(fù)合材料的有機(jī)晶體管及其化學(xué)傳感性能研究(51573036),自然科學(xué)基金,2016.1-2019.12
4、高彈性半導(dǎo)體聚合物的制備及其在可延展電子中的應(yīng)用(21174036),自然科學(xué)基金,2012.1-2015.12
5、噴墨打印聚合物共混物薄膜相分離行為及其在晶體管中的應(yīng)用(51103034),自然科學(xué)基金,2012.1-2014.12
6、基于多相體系的新型顯示材料及器件性能研究(2012CB723406),科技部973計(jì)劃,2012.1-2014.12
7、噴墨打印制作有機(jī)半導(dǎo)體/絕緣聚合物共混物薄膜相形態(tài)的調(diào)控及其在有機(jī)薄膜晶體管中的應(yīng)用,教育部留學(xué)回國(guó)人員科研啟動(dòng)經(jīng)費(fèi),2012.1-2013.12
8、基于聚合物共混體系的一步法制備有機(jī)薄膜晶體管的研究(61040015),自然科學(xué)基金,2011.1-2011.12
9、應(yīng)用聚合物共混物相分離噴墨印制有機(jī)薄膜晶體管的研究(20100111120006),高等學(xué)校博士點(diǎn)基金,2011.1-2013.12
10、紫外光刻微圖案化OTFT半導(dǎo)體材料的制備與性能(11040606M146),安徽省自然科學(xué)基金,2011.1-2012.12
獲獎(jiǎng)及專利情況
(1)安徽省杰出青年基金獲得者,2018年;
(2)教育部新世紀(jì)優(yōu)秀人才支持計(jì)劃,2012年;
專利:
授權(quán)發(fā)明專利12項(xiàng).
著作論文(代表作)
[1] Y. F. Ding, Y. Yuan, N. Wu, X. H. Wang, G. B. Zhang, L. Z. Qiu, Intrinsically Stretchable n-Type Polymer Semiconductors through Side Chain Engineering. Macromolecules 2021, 54, 18, 8849–8859
[2] X. Zhao, S. Y. Wei, X. H. Wang; L. Z. Qiu. A Novel Multilevel Nonvolatile Solar-Blind Deep Ultraviolet Photoelectric Memory Based on an Organic Field Effect Transistor. Advanced Optical Materials 2021.
[3] F. S. Zhao, Y. Yuan, Y. F. Ding, Y. F. Wang, X. H. Wang, G. B. Zhang, X. D. Gu; L. Z. Qiu. Taming Charge Transport and Mechanical Properties of Conjugated Polymers with Linear Siloxane Side Chains. Macromolecules 2021 54, 5440-5450.
[4] L. Z. Qiu, S. Y. Wei, H. S. Xu, Z. X. Zhang, Z. Y. Guo, X. G. Chen, S. Y. Liu, D. Wu; L. B. Luo. Ultrathin Polymer Nanofibrils for Solar-Blind Deep Ultraviolet Light Photodetectors Application. Nano Lett. 2020 20, 644-651.
[5] Y. F. Ding, L. L. Jiang, Y. C. Du, S. Kim, X. H. Wang, H. B. Lu, G. B. Zhang, K. Cho; L. Z. Qiu. Linear hybrid siloxane-based side chains for highly soluble isoindigo-based conjugated polymers. Chem. Commun. 2020 56, 11867-11870.
[6] G. B. Zhang, Y. Zhao, B. Kang, S. Park, J. F. Ruan, H. B. Lu, L. Z. Qiu, Y. S. Ding; K. Cho. Fused Heptacyclic-Based Acceptor-Donor-Acceptor Small Molecules: N-Substitution toward High-Performance Solution-Processable Field-Effect Transistors. Chem. Mater. 2019 31, 2027-2035.
[7] Y. C. Du, H. B. Yao, L. Galuska, F. Ge, X. H. Wang, H. B. Lu, G. B. Zhang, X. D. Gu; L. Z. Qiu. Side-Chain Engineering To Optimize the Charge Transport Properties of Isoindigo-Based Random Terpolymers for High-Performance Organic Field-Effect Transistors. Macromolecules 2019 52, 4765-4775.
[8] L. Zhang, G. Wang, C. Xiong, L. Zheng, J. He, Y. Ding, H. Lu, G. Zhang, K. Cho; L. Qiu. Chirality detection of amino acid enantiomers by organic electrochemical transistor. Biosens. Bioelectron. 2018 105, 121-128.
[9] L. Zhang, G. Wang, D. Wu, C. Xiong, L. Zheng, Y. Ding, H. Lu, G. Zhang; L. Qiu. Highly selective and sensitive sensor based on an organic electrochemical transistor for the detection of ascorbic acid. Biosensors & Bioelectronics 2018 100, 235-241.
[10] F. F. Wang, Y. R. Dai, W. W. Wang, H. B. Lu, L. Z. Qiu, Y. S. Ding; G. B. Zhang. Incorporation of Heteroatoms in Conjugated Polymers Backbone toward Air-Stable, High-Performance n-Channel Unencapsulated Polymer Transistors. Chem. Mater. 2018 30, 5451-5459.
[11] S. X. Ma, G. B. Zhang, F. F. Wang, Y. R. Dai, H. B. Lu, L. Z. Qiu, Y. S. Ding; K. Cho. 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.
[12] Y. Liu, F. Wang, J. Chen, X. Wang, H. Lu, L. Qiu; G. Zhang. 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.
[13] M. Zhu, S. Lv, Q. Wang, G. Zhang, H. Lu; L. Qiu. Enhanced near-infrared photoresponse of organic phototransistors based on single-component donor-acceptor conjugated polymer nanowires. Nanoscale 2016 8, 7738-7748.
[14] L. Z. Qiu, X. Wang, W. H. Lee, J. A. Lim, J. S. Kim, D. Kwak; K. Cho*. Organic Thin-Film Transistors Based on Blends of Poly(3-hexylthiophene) and Polystyrene with a Solubility-Induced Low Percolation Threshold. Chem. Mater. 2009 21, 4380-4386.
[15] L. Z. Qiu, W. H. Lee, X. H. Wang, J. S. Kim, J. A. Lim, D. Kwak, S. Lee; K. Cho*. Organic Thin-film Transistors Based on Polythiophene Nanowires Embedded in Insulating Polymer. Adv. Mater. 2009 21, 1349-1353.
[16] L. Qiu, J. A. Lim, X. Wang, W. H. Lee, M. Hwang; K. Cho*. Versatile use of vertical-phase-separation-induced bilayer structures in organic thin-film transistors. Adv. Mater. 2008 20, 1141-1145.




