
(1) 国家自然科学基金面上项目:多功能氧化石墨烯负载外泌体靶向治疗糖尿病神经病变的研究,项目号:82172040,2022.01-2025.12,55万元,主持
(2) 国家自然科学基金面上项目:温度响应性细胞移植体系改善下肢缺血的疗效及机制研究,项目号:81771942,2018.01-2021.12,55万元,主持
(3) 同济大学承一前沿材料研究中心平台项目,2020.10-2023.10,300万元,主持
(4) “十二五”国家科技支撑计划:新型肿瘤栓塞微球研发-聚乳酸载药微球制备及产业化生产技术开发,项目号:2012BAI15B061,2012.01-2015.12,111.744万元,主持
(5) 中央高校基本科研业务费专项资金项目:氧化石墨烯表面聚合物可控功能化构建智能抗癌药物控释载体,2012.01-2013.12,20万元,主持
(6) 留学回国人员科研启动基金:具有UCST的聚合物合成、自组装及其药物控释性能研究,2014.09-2016.09,3万元,主持
(7) 国家自然科学基金青年基金:以点击化学构建壳聚糖为主链的聚合物生物缀合物,项目号:20804029,2009.01-2011.12,20万元,主持
(8) 中国博士后科学基金:精细结构α聚酯共聚物的合成与药物可控释放研究,项目号:20060400457,2006.12-2008.03,3万元,主持
(9) 国家863计划:新型纳米载药与治疗技术研究及应用,项目号:2013AA032202, 2013.01-2015.12,757万元,参与
(1) Nuoya Zhao, Weizhong Yuan*. Self-healing and shape-adaptive nanocomposite hydrogels with anti-inflammatory, antioxidant, antibacterial activities and hemostasis for real-time visual regeneration of diabetic wounds. Composites Part B: Engineering, 2023, 202, 110819.
(2) Zixuan Zhou, Weizhong Yuan*. Functionally integrated conductive organohydrogel sensor for wearablemotion detection, triboelectric nanogenerator and non-contact sensing. Composites Part A: Applied Science and Manufacturing, 2023, 172, 107603.
(3) Shiwei Huang, Nuoya Zhao, Zhiyi Qian, Weizhong Yuan*. In situ injectable NIR-responsive supramolecular hydrogels encapsulating ROS-triggered chain-breakage prodrug micelles and hydrophilic Fe3O4 nanoparticles for enhanced synergistic chemo-photothermal therapy. Journal of Materials Chemistry B, 2023, 11, 3727-3739.
(4) Binyao Zhang, Liduo Rong, Zixuan Zhou, Weizhong Yuan*. Ultra-stretchable, high-adhesive, self-healable and remoldable hydrogel sensor with dynamic multi-interactions for multiscale motion detection, Braille transmission and temperature monitoring. Chemical Engineering Journal, 2023, 462, 142305.
(5) Suhaib Shuaib Adam Shuaib, Zixuan Niu, Zhiyi Qian, Shengyang Qi, Weizhong Yuan*. Self‑luminous, shape‑stabilized porous ethyl cellulose phase‑change materials for thermal and light energy storage. Cellulose, 2023, 30, 1841-1855.
(6) Zixuan Zhou, Weizhong Yuan*, Xiaoyun Xie*. A stretchable and adhesive composite hydrogel containing PEDOT:PSS for wide-range and precise motion sensing and electromagnetic interference shielding and as a triboelectric nanogenerator. Materials Chemistry Frontiers, 2022, 6, 3359-3368.
(7) Zhirui He, Zixuan Zhou, Weizhong Yuan*. Highly Adhesive, Stretchable, and Antifreezing Hydrogel with Excellent Mechanical Properties for Sensitive Motion Sensors and Temperature-/Humidity-Driven Actuators. ACS Applied Materials & Interfaces, 2022, 14, 38205-38215.
(8) Nuoya Zhao, Weizhong Yuan*. Functionally integrated bioglass microspheres-composited double-network hydrogel with good tissue adhesion and electrical conductivity for efficientwound treatment and health detection. Composites Part B: Engineering, 2022, 242, 110095.
(9) Liduo Rong, Xiaoyun Xie, Weizhong Yuan*, Yang Fu*. Superior, Environmentally Tolerant, Flexible, and Adhesive Poly(ionic liquid) Gel as a Multifaceted Underwater Sensor. ACS Applied Materials & Interfaces, 2022, 14, 29273-29283.
(10) Yujie Qi, Yifeng Yuan, Zhiyi Qian, Xiaodie Ma, Weizhong Yuan*, Ye Song*. Macromolecular Bioscience, 2022, 2200161.
(11) Zixuan Niu, Shengyang Qi, Suhaib Shuaib Adam Shuaib, Andreas Züttel, Weizhong Yuan*. Flexible core-sheath thermochromic phase change fibers for temperature management and electrical/solar energy harvesting. Composites Science and Technology, 2022, 226, 109538.
(12) Zhiyi Qian, Nuoya Zhao, Chunyao Wang, Weizhong Yuan*. Injectable self-healing polysaccharide hydrogel loading CuS and pH-responsive DOX@ZIF-8 nanoparticles for synergistic photothermal-photodynamic-chemo therapy of cancer. Journal of Materials Science & Technology, 2022, 127, 245-255.
(13) Zixuan Zhou, Kehan Liu, Ziyue Ban, Weizhong Yuan*. Highly adhesive, self-healing, anti-freezing and anti-drying organohydrogel with self-power and mechanoluminescence for multifunctional flexible sensor. Composites Part A: Applied Science and Manufacturing, 2022, 154, 106806.
(14) Nuoya Zhao, Weizhong Yuan*. Highly adhesive and dual-crosslinking hydrogel via one-pot self-initiated polymerization for efficient antibacterial, antifouling and full-thickness wound healing. Composites Part B: Engineering, 2022, 230, 109525.
(15) Zixuan Niu, Shengyang Qi, Suhaib Shuaib Adam Shuaib, Weizhong Yuan*. Flexible, stimuli-responsive and self-cleaning phase change fiber for thermal energy storage and smart textiles. Composites Part B: Engineering, 2022, 228, 109431.
(16) Zhirui He, Weizhong Yuan*. Highly Stretchable, Adhesive Ionic Liquid-Containing Nanocomposite Hydrogel for Self-Powered Multifunctional Strain Sensors with Temperature Tolerance. ACS Applied Materials & Interfaces, 2021, 13, 53055-53066.
(17) Xiaodie Ma, Chunyao Wang, Weizhong Yuan*, Xiaoyun Xie*, Ye Song*. Highly Adhesive, Conductive, and Self-Healing Hydrogel with Triple Cross-Linking Inspired by Mussel and DNA for Wound Adhesion and Human Motion Sensing. ACS Applied Polymer Materials, 2021, 3, 6586-6597.
(18) Yujie Qi, Zhiyi Qian, Weizhong Yuan*, Zhihong Li*. Injectable and self-healing nanocomposite hydrogel loading needle-like nano-hydroxyapatite and graphene oxide for synergistic tumour proliferation inhibition and photothermal therapy. Journal of Materials Chemistry B, 2021, 9, 9734-9743.
(19) Danfeng Wu, Zhangting Xu, Zhihong Li, Weizhong Yuan*, Hai-Quan Wang*, Xiaoyun Xie. Reduction and temperature dually-triggered size-shrinkage and drug release of micelles for synergistic photothermal-chemotherapy of cancer. European Polymer Journal, 2021, 154, 110535.
(20) Qian Wang, Jing Xiao, Yanhong Su, Jianwen Huang, Jihua Li, Lige Qiu, Meixiao Zhan, Xu He*, Weizhong Yuan*, Yong Li*. Fabrication of thermoresponsive magnetic micelles from amphiphilic poly(phenyl isocyanide) and Fe3O4 nanoparticles for controlled drug release and synergistic thermochemotherapy. Polymer Chemistry, 2021, 12, 2132-2140.
(21) Chenming Ji, Yinlu Deng, Hua Yuan*, Weizhong Yuan*, Ye Song*, Zhihong Li*. Hypoxia/Temperature/pH Triple Stimuli–Responsive Block Copolymers: Synthesis, Self-Assembly, and Controlled Drug Release, Macromolecular Materials and Engineering, 2021, 306, 2100073
(22) Chunyao Wang, Nuoya Zhao, Yixuan Huang, Ran He, Sicheng Xu, Weizhong Yuan*. Coordination of injectable self-healing hydrogel with Mn-Zn ferrite@ mesoporous silica nanospheres for tumor MR imaging and efficient synergistic magnetothermal-chemo-chemodynamic therapy. Chemical Engineering Journal, 2020, 401, 126100.
(23) Zhirui He, Weizhong Yuan*. Adhesive, Stretchable, and Transparent Organohydrogels for Antifreezing, Antidrying, and Sensitive Ionic Skins. ACS Applied Materials & Interfaces, 2021, 13(1), 1474-1485.
(24) Zixuan Niu, Weizhong Yuan*. Smart Nanocomposite Nonwoven Wearable Fabrics Embedding Phase Change Materials for Highly Efficient Energy Conversion–Storage and Use as a Stretchable Conductor, ACS Applied Materials & Interfaces, 2021, 13, 4508-4518.
(25) Zixuan Zhou, Chunhua Qian*, Weizhong Yuan*. Self-healing, anti-freezing, adhesive and remoldable hydrogel sensor with ion-liquid metal dual conductivity for biomimetic skin, Composites Science and Technology, 2021, 203, 108608.
(26) Miao Jiang, Xueyuan Gao, Nuoya Zhao, Xiaoyun Cheng, Weizhong Yuan*. Amphiphilic copolymers with light-pH-temperature triple stimuli-responses: Preparation, self-assembly and controlled drug release, Materials Letters, 2021, 284(1), 129008.
(27) Zixuan Zhou, Zhirui He, Shiwu Yin*, Xiaoyun Xie*, Weizhong Yuan*. Adhesive, stretchable and antibacterial hydrogel with external/self-power for flexible sensitive sensor used as human motion detection, Composites Part B: Engineering, 2021, 220, 108984.
(28) Chunyao Wang; Nuoya Zhao; Weizhong Yuan*. NIR/Thermoresponsive injectable self-healing hydrogels containing polydopamine nanoparticles for efficient synergistic cancer thermochemotherapy, ACS Applied Materials & Interfaces, 2020, 12(8): 9118-9131.
(29) Zhangting Xu, Chang Pan and Weizhong Yuan*. Light-enhanced hypoxia-responsive and azobenzene cleavage-triggered size-shrinkable micelles for synergistic photodynamic therapy and chemotherapy, Biomaterials Science, 2020, 8(12), 3348-3358.
(30) Chenming Ji, Yinlu Deng, Hua Yuan, Yongzhen Wu*, Weizhong Yuan*. Hypoxia and temperature dual-stimuli-responsive random copolymers: facile synthesis, self-assembly and controlled release of drug, New Journal of Chemistry, 2020, 44(25), 10229-10238.
(31) Hui Zou, Qiliang Wu, Qianwei Li, Chunyao Wang, Li Zhou, Xiao-Hua Hou, Weizhong Yuan*. Thermo- and redox-responsive dumbbell-shaped copolymers: from structure design to the LCST-UCST transition, Polymer Chemistry, 2020, 11(4), 830-842.
(32) Chunyao Wang, Chenyu Liang, Rui Wang, Xueliang Yao, Peng Guo, Weizhong Yuan*, Yang Liu*, Ye Song*, Zhihong Li*, Xiaoyun Xie*. The fabrication of a highly efficient self-healing hydrogel from natural biopolymers loaded with exosomes for the synergistic promotion of severe wound healing, Biomaterials Science, 2020, 8: 313-324.
(33) Bowen Yang; Weizhong Yuan*. Highly stretchable, adhesive, and mechanical zwitterionic nanocomposite hydrogel biomimetic skin, ACS Applied Materials & Interfaces, 2019, 11(43): 40620-40628.
(34) Bowen Yang, Weizhong Yuan*. Highly stretchable and transparent double-network hydrogel ionic conductors as flexible thermal-mechanical dual sensors and electroluminescent devices, ACS Applied Materials & Interfaces, 2019, 11(18): 16765-16775.
(35) Zixuan Niu, Weizhong Yuan*. Highly Efficient Thermo- and Sunlight-Driven Energy Storage for Thermo-Electric Energy Harvesting Using Sustainable Nanocellulose-Derived Carbon Aerogels Embedded Phase Change Materials, ACS Sustainable Chemistry & Engineering, 2019, 7(20), 17523-17534.
(36) Zixuan Zhou, Lejing Liu, Weizhong Yuan*. A superhydrophobic poly(lactic acid) electrospun nanofibrous membrane surface-functionalized with TiO2 nanoparticles and methyltrichlorosilane for oil/water separation and dye adsorption, New Journal of Chemistry, 2019, 43(39), 15823-15831.
(37) Rui Wang, Xueliang Yao, Tingyu Li, Xue Li, Mingming Jin, Yebin Ni, Weizhong Yuan*, Xiaoyun Xie*, Ligong Lu*, Maoquan Li*. Reversible thermoresponsive hydrogel fabricated from natural biopolymer for the improvement of critical limb ischemia by controlling release of stem cells, Advanced Healthcare Materials, 2019, 8, 1900967. (IF=9.933)
(38) Yeqiang Lu, Zixuan Niu, Weizhong Yuan*. Multifunctional magnetic superhydrophobic carbonaceous aerogel with micro/nano-scale hierarchical structures for environmental remediation and energy storage, Applied Surface Science, 2019, 480, 851-860. (IF=6.707)
(39) Yi Shen, Zhangting Xu, Lulin Li, Weizhong Yuan*, Ming Luo*, Xiaoyun Xie*. Fabrication of glucose-responsive and biodegradable copolymer membrane for controlled release of insulin at physiological pH, New Journal of Chemistry, 2019, 43(20), 7822-7830.
(40) Yinlu Deng, Hua Yuan*, Weizhong Yuan*. Hypoxia-responsive micelles self-assembled from amphiphilic block copolymers for the controlled release of anticancer drugs, Journal of Materials Chemistry B, 2019, 7: 286-295.
(41) Lejing Liu, Weizhong Yuan*. A hierarchical functionalized biodegradable PLA electrospun nanofibrous membrane with superhydrophobicity and antibacterial properties for oil/water separation, New Journal of Chemistry, 2018, 42(21), 17615-17624.
(42) Weizhong Yuan*, Xueyuan Gao, Erli Pei*, Zhihong Li*. Light- and pH-dually responsive dendrimer-star copolymer containing spiropyran groups: synthesis, self-assembly and controlled drug release, Polymer Chemistry, 2018, 9: 3651-3661.
(43) Weizhong Yuan*, Chunyao Wang, Shize Lei, Jiangdi Chen, Shaorong Lei*, Zhihong Li*. Ultraviolet light-, temperature- and pH-responsive fluorescent sensors based on cellulose nanocrystals, Polymer Chemistry, 2018, 9: 3098-3107.
(44) Yeqiang, Weizhong Yuan*. Superhydrophobic three-dimensional porous ethyl cellulose absorbent with micro/nano-scale hierarchical structures for highly efficient removal of oily contaminants from water, Carbohydrate Polymers, 2018, 191, 86-94.
(45) Xiangnan Chen, Weizhong Yuan*, Miao Jiang, Xiaoyun Xie. Surface glycopolymer-modified functional macroporous polyHIPE obtained by ATRP for the removal of boron in water, New Journal of Chemistry, 2018, 42(3), 2104-2112.
(46) Weizhong Yuan*, Xiangnan Chen, Yifan Xu, Chuan Yan, Weishuai Lian*, Yun Zhou*, Zhihong Li*. Preparation and recyclable catalysis performance of functional macroporous polyHIPE immobilized with gold nanoparticles on its surface, RSC Advances, 2018, 8(11), 5912-5919.
(47) Yeqiang Lu, Yue Wang, Lejing Liu, Weizhong Yuan*. Environmental-friendly and magnetic/silanized ethyl cellulose sponges as effective and recyclable oil-absorption materials, Carbohydrate Polymers, 2017, 173, 422-430.
(48) Jiangdi Chen, Zixuan Zhou, Zixun Chen, Weizhong Yuan*, Maoquan Li*. A fluorescent nanoprobe based on cellulose nanocrystals with porphyrin pendants for selective quantitative trace detection of Hg2+, New Journal of Chemistry, 2018, 41(18), 10272-10280.
(49) Hui Zou, Chunyao Wang, Weizhong Yuan*, Shanfeng Wang*, Maoquan Li*. Functional micelles formed from glucose-, thermo- and pH-triple responsive copolymers for controlled release, Polymer Chemistry, 2017, 8: 4869-4877.
(50) Hui Zou, Weizhong Yuan*, Yeqiang Lu, Shanfeng Wang. UV light- and thermo-responsive supramolecular aggregates with tunable morphologies from the inclusion complexation of dendritic/linear polymers, Chemical Communications, 2017, 53: 2463-2466.
(51) Hui Zou, Yeqiang Lu, Weizhong Yuan*. Shanfeng Wang; UV light- and thermo-responsive hierarchical assemblies based on the inclusion complexation of β-cyclodextrin and azobenzene, Polymer Chemistry, 2017, 8: 661-665.
(52) Yeqiang Lu, Weizhong Yuan*. Superhydrophobic/Superoleophilic and Reinforced Ethyl Cellulose Sponges for Oil/Water Separation: Synergistic Strategies of Cross-linking, Carbon Nanotube Composite, and Nanosilica Modification, ACS Applied Materials & Interfaces, 2017, 9(34), 29167-29176.
(53) Yeqiang Lu, Hui Zou, Hua Yuan, Shuying Gu, Weizhong Yuan*, Maoquan Li*. Triple stimuli-responsive supramolecular assemblies based on host-guest inclusion complexation between beta-cyclodextrin and azobenzene, European Polymer Journal, 2017, 91, 396-407.
(54) Hua Yuan, Hai Chi, Weizhong Yuan*, Ethyl cellulose amphiphilic graft copolymers with LCST-UCST transition: Opposite self-assembly behavior, hydrophilic-hydrophobicsurface and tunable crystalline morphologies, Carbohydrate Polymers, 2016, 147, 261-271.
(55) Weizhong Yuan*, Weiwei Huang, Hui Zou. Synthesis and properties of CO2-responsive copolymer by the combination of reversible addition-fragmentation chain transfer polymerization and click chemistry, Polymer Bulletin, 2016, 73(8), 2199-2210.
(56) Weizhong Yuan*, Hui Zou, Jin Shen. Amphiphilic graft copolymers with ethyl cellulose backbone: Synthesis, self-assembly and tunable temperature-CO2 response, Carbohydrate Polymers, 2016, 136: 216-223.
(57) Hua Yuan, Hai Chi, Weizhong Yuan*. A star-shaped amphiphilic block copolymer with dual responses: synthesis, crystallization, self-assembly, redox and LCST-UCST thermoresponsive transition, Polymer Chemistry, 2016, 7, 4901-4911. (IF=5.582)
(58) Weizhong Yuan*, Xiangnan Chen. Star-shaped and star-block polymers with a porphyrin core: from LCST-UCST thermoresponsive transition to tunable self-assembly behaviour and fluorescence performance, RSC Advances, 2016, 6(8), 6802-6810.
(59) Hui Zou, Weizhong Yuan*; Temperature- and redox-responsive magnetic complex micelles for controlled drug release, Journal of Materials Chemistry B, 2015, 3, 260-269.
(60) Weizhong Yuan*, Jin Shen, Hui Zou. Amphiphilic block copolymer terminated with pyrene group: from switchable CO2-temperature dual responses to tunable fluorescence., RSC Advances, 2015, 5, 13145-13152.
(61) Hui Zou, Weizhong Yuan*. CO2- and thermo-responsive vesicles: from expansion-contraction transformation to vesicles-micelles transition. Polymer Chemistry, 2015, 6(13), 2457-2465.
(62) Weizhong Yuan*, Jinju Wang. Oligo(ethylene glycol) and quaternary ammonium-based block copolymer micelles: from tunable thermoresponse to dual salt responses. RSC Advances, 2014, 4(73), 38855-38858.
(63) Weizhong Yuan*, Jinju Wang, Lulin Li, Hui Zou, Hua Yuan, Jie Ren. Synthesis, self-assembly and multi-stimuli responses of supramolecular block copolymer. Macromolecular Rapid Communications, 2014, 35, 1776-1781.
(64) Weizhong Yuan*, Jin Shen, Wen Guo. Thermoresponse and light-induced reversible self-assembly/disassembly of supra-amphiphiles from azobenzene- and β-cyclodextrin-containing copolymers. Materials Letters, 2014,134, 259-262.
(65) Weizhong Yuan*, Jin Shen, Lulin Li, Xu Liu, Hui Zou. Preparation of POSS-poly(ε-caprolactone)-β-cyclodextrin/Fe3O4hybrid magnetic micelles for removal of bisphenol A from water. Carbohydrate Polymers, 2014, 113, 353-361.
(66) Weizhong Yuan*, Tianxiang Shen, Jinju Wang, Hui Zou. Formation-dissociation of glucose, pH and redox triply responsive micelles and controlled release of insulin. Polymer Chemistry, 2014, 5, 3968-3971.
(67) Weizhong Yuan*, Wen Guo. Ultraviolet light-breakable and tunable thermoresponsive amphiphilic block copolymer: from self-assembly, disassembly to re-self-assembly. Polymer Chemistry, 2014, 5(14), 4259-4267.
(68) Menghong Jia, Tianbin Ren, An Wang, Weizhong Yuan*, Jie Ren. Amphiphilic Star-Shaped Poly(epsilon-caprolactone)-block-poly(L-Lysine) Copolymers with Porphyrin Core: Synthesis, Self-Assembly, and Cell Viability Assay. Journal of Applied Polymer Science, 2014, 131, 7, 40097(1-10).
(69) Hui Zou, Wen Guo, Weizhong Yuan*. Supramolecular hydrogel from inclusion complexation ofα-cyclodextrin with densely grafted chains in micelles for controlled drug and protein release. Journal of Materials Chemistry B, 2013, 1, 6235-6244.
(70) Weizhong Yuan*, Tianxiang Shen, Xu Liu, Jie Ren. Star-shaped inorganic-organic hybrid polymers with polyhedral oligomeric silsesquioxane core: Synthesis, self-assembly and tunable thermoresponse. Materials Letters, 2013, 111, 9-12.
(71) Weizhong Yuan*, Xu Liu, Hui Zou, Jie Ren*. Environment-induced nanostructural dynamical-change based on supramolecular self-assembly of cyclodextrin and star-shaped poly(ethylene oxide) with polyhedral oligomeric silsesquioxane core. Polymer, 2013, 54, 5374-5381.
(72) Weizhong Yuan*, Jinju Wang, Tianxiang Shen, Jie Ren. Surface modification of graphene oxide with thermoresponsive polymers via atom transfer radical polymerization: Transition from LCST to UCST. Materials Letters, 2013, 107, 243-246.
(73) Weizhong Yuan*, Wen Guo, Hui Zou, Jie Ren. Tunable thermo-, pH- and light-responsive copolymer micelles. Polymer Chemistry, 2013, 4, 3934-3937.
(74) Weizhong Yuan*, Xu Liu, Hui Zou, Jianbo Li, Hua Yuan, Jie Ren*. Synthesis, Self-assembly and Properties of Homoarm and Heteroarm Star-shaped Inorganic-Organic Hybrid Polymers with POSS Core. Macromolecular Chemistry and Physics, 2013, 214, 1580-1589.
(74) Weizhong Yuan*, Hui Zou, Wen Guo, Tianxiang Shen, Jie Ren. Supramolecular micelles with dual temperature and redox responses for multi-controlled drug release. Polymer Chemistry, 2013, 4, 2658-2661.
(76) Weizhong Yuan*, Hui Zou, Wen Guo, Jie Ren. pH-responsive amphiphilic H-shaped supramolecular copolymer via the inclusion complexation between β-cyclodextrin and adamantane. Polymer Bulletin, 2013, 70, 2257-2267. (IF=2.870)
(77) Tianbin Ren*, Changjin Liu, Wei Wu, Kuan Ye, Weizhong Yuan*. Synthesis, characterization, crystalline morphologies and hydrophilicity of A4BA4 nonlinear block copolymers. Polymer International, 2013, 62, 1500-1506.
(78) Cong Zhang, Yunqing Zhu, Chuncai Zhou, Weizhong Yuan*, Jianzhong Du*. Antibacterial vesicles by direct dissolution of block copolymer in water. Polymer Chemistry, 2013, 4, 255-259.
(79) Weizhong Yuan*, Hui Zou, Wen Guo, An Wang, Jie Ren. Supramolecular amphiphilic star-branched copolymer: from LCST-UCST transition to temperature-fluorescence responses. Journal of Materials Chemistry, 2012, 22, 24783-24791.
(80) Weizhong Yuan, Jingren Wei, Hang Lu, Lang Fan, Jianzhong Du*. Water-dispersible and biodegradable polymer micelles with good antibacterial efficacy. Chemical Communications, 2012, 48, 6857-6859.
(81) Weizhong Yuan*, Jinchun Zhang, Hui Zou, Jie Ren. Synthesis, Crystalline Morphologies, Self-Assembly and Properties of H-Shaped Amphiphilic Dually Responsive Terpolymers. Journal of Polymer Science Part A: Polymer Chemistry, 2012, 50, 2541-2552.
(82) Weizhong Yuan*, Jinchun Zhang, Hui Zou, Tianxiang Shen, Jie Ren. Amphiphilic ethyl cellulose brush polymers with mono and dual side chains: facile synthesis, self-assembly, and tunable temperature-pH responsivities. Polymer, 2012, 53, 956-966.
(83) Tianbin Ren*, Xue Lei, Weizhong Yuan*. Synthesis and self-assembly of double-hydrophilic pentablock copolymer with pH and temperature responses via sequential atom transfer radical polymerization. Materials Letters, 2012, 67, 383-386.
(84) Weizhong Yuan*, Jinchun Zhang, Jingren Wei, Hua Yuan, Jie Ren. Synthesis, Characterization and Properties of Tunable Thermosensitive Amphiphilic Dendrimer-Star Copolymers with Y-Shaped Arms. Journal of Polymer Science Part A: Polymer Chemistry, 2011, 49, 4071-4980.
(85) Tianbin Ren, An Wang, Weizhong Yuan*, Lan Li, Yue Feng. Synthesis, Self-assembly, Fluorescence and Thermosensitive Properties of Star-Shaped Amphiphilic Copolymers with Porphyrin Core. Journal of Polymer Science Part A: Polymer Chemistry, 2011, 49, 2303-2313.
(86) Weizhong Yuan*, Zhengda Zhao, Jinying Yuan, Shuying Gu, FengboZhang, XumingXie, Jie Ren. Synthesis of pH- and temperature-responsive chitosan-graft-poly(2-(N,N-dimethylamino)ethyl methacrylate) copolymer and gold nanoparticles stabilization by its micelles. Polymer International, 2011, 60, 194-201.
(87) Weizhong Yuan*, Jinchun Zhang, Jingren Wei, Cong Zhang, Jie Ren. Synthesis and self-assembly of pH-responsive amphiphilic dendritic star-block terpolymer by the combination of ROP, ATRP and click chemistry. European Polymer Journal, 2011, 47, 949-958.
(88) Weizhong Yuan*, Xiaofei Li, Shuying Gu, Amin Cao, Jie Ren. Amphiphilic chitosan graft copolymer via combination of ROP, ATRP and click chemistry: synthesis, self-assembly, thermosensitivity, fluorescence, and controlled drug release. Polymer, 2011, 52, 658-666.
(89) Weizhong Yuan*, Zhengda Zhao, Shuying Gu, Tianbin Ren, Jie Ren. Synthesis and self-assembly of pH-responsive chitosan graft copolymer by the combination of atom transfer radical polymerization and click chemistry. Materials Letters, 2011, 65, 793-796.
(90) Xiaofei Li, Weizhong Yuan*, Shuying Gu, Jie Ren. Synthesis and self-assembly of tunable thermosensitive chitosan amphiphilic copolymers by click chemistry. Materials Letters, 2010, 64, 2663-2666.
(91) Weizhong Yuan*, Zhengda Zhao, Shuying Gu, Jie Ren. Synthesis, Characterization and Properties of Amphiphilic Chitosan Copolymers with Mixed Side Chains by Click Chemistry. Journal of Polymer Science, Part A: Polymer Chemistry, 2010, 48, 3476-3486.
(92) Weizhong Yuan, Jinying Yuan*, Lilin Zhou, Sizhu Wu, Xiaoyin Hong. Fe3O4@poly(2-hydroxyethyl methacrylate)-graft-poly(ε-caprolactone) magnetic nanoparticles with branched brush polymeric shell, Polymer, 2010, 51, 2540-2547.
(93) Weizhong Yuan, Jie Ren. Supramolecular Polyseudorotaxanes Formation between Star-Block Copolymer and α-Cyclodextrin: From Outer Block to Diblock Inclusion Complexation. Journal of Polymer Science, Part A: Polymer Chemistry, 2009, 47, 2754-2762.
(94) Weizhong Yuan, Jinying Yuan*, Mi Zhou, Caiyuan Pan. Synthesis, Characterization, and Fluorescence of Pyrene-Containing Eight-Arm Star-Shaped Dendrimer-Like Copolymer with Pentaerythritol Core, Journal of Polymer Science Part A: Polymer Chemistry, 2008, 46, 2788-2798.
(95) Weizhong Yuan, Jinying Yuan*, Fengbo Zhang, Xuming Xie, Caiyuan Pan. Synthesis, Characterization, Crystalline Morphologies and Hydrophilicity of Brush Copolymers with Double Crystallizable Side Chains, Macromolecules, 2007, 40, 9094-9102.
(96) Weizhong Yuan, Jinying Yuan*, Fengbo Zhang, Xuming Xie. Syntheses, Characterization, and in Vitro Degradation of Ethyl Cellulose-graft-Poly(ε-caprolactone)-block-Poly(L-lactide) Copolymers by Sequential Ring-Opening Polymerization, Biomacromolecules, 2007, 8, 1101-1108.
(97) Weizhong Yuan, Jinying Yuan*, Sixun Zheng, Xiaoyin Hong. Synthesis, characterization, and controllable drug release of dendritic star-block copolymer by ring-opening polymerization and atom transfer radical polymerization, Polymer, 2007, 48, 2585-2594.
(98) Weizhong Yuan, Jinying Yuan*, Xiaobin Huang and Xiaozhen Tang, Synthesis, characterization, and in vitro degradation of star-shapedpoly(ε-caprolactone)-b-poly(L-lactide)-b-poly(D,L-lactide-co-glycolide) from hexakis[p-(hydroxymethyl)phenoxy]cyclotriphosphazene initiator, Journal of Applied Polymer Science, 2007, 104, 2310-2317.
(99) Weizhong Yuan, Jinying Yuan*, Mi Zhou, Xiaofeng Sui. Synthesis, characterization and thermal properties of dendrimer-star block-comb copolymers by ring-opening polymerization and atom transfer radical polymerization, Journal of Polymer Science Part A: Polymer Chemistry, 2006, 44, 6575-6586.
(100) Weizhong Yuan, Xiaozhen Tang*, Xiaobin Huang and Sixun Zheng. Synthesis, Characterization and thermal properties of hexa-armed star-shaped poly(ε-caprolactone)-b-poly(D,L-lactide-co-glycolide) initiated with hydroxyl-terminated cyclotriphosphazene, Polymer, 2005, 46, 1701-1707.
(101) Weizhong Yuan, Lu Zhu, Xiaobin Huang, Sixun Zheng and Xiaozhen Tang*. Synthesis, characterization and degradation of hexa-armed star-shaped poly(L-lactide)s and poly(D,L-lactide)s initiated with hydroxyl-terminated cyclotriphosphazene, Polymer Degradation and Stability, 2005, 87, 503-509.
(102) Weizhong Yuan, Lu Zhu, Xiaobin Huang, Sixun Zheng and Xiaozhen Tang*. Synthesis and properties of penta-armed poly(L-lactide)s onN-dichlorophosphoryl-P-trichlorophosphazene derivative core, European Polymer Journal, 2005, 41,1867-1873.
(103) Weizhong Yuan, Qing Song, Lu Zhu, Xiaobin Huang, Sixun Zheng, Xiaozhen Tang*. Asymmetric penta-armed poly(e-caprolactone)s with short-chain phosphazene core: synthesis, characterization, andin vitrodegradation, Polymer International, 2005, 54,1262-1267.
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同济大学是国家教育部直属重点大学,也是首批被批准成立研究生院、并被列为国家“ 211 工程”和“面向 21 世纪教育振兴行动计划”(985 工程)与上海市重点建设的高水平研究型大学之一。同济大学创建于 1907 年,现已成为拥有理、工、医、文、法、经(济)、管(理)、哲、教(育)9 大门类的研究型、综合性、多功能的现代大学。
同济大学现设有各类专业学院 22 个,还建有继续教育学院、 职业技术教育学院等,设有经中德政府批准合作培养硕士研究生的中德学院、中德工程学院,与法国巴黎高科大学集团合作举办的中法工程和管理学院等。目前学校共有 81 个本科专业、 140 个硕士点、 7 个硕士专业学位授权点、博士授权点 58 个、 13 个博士后流动站,学校拥有国家级重点学校 10 个。各类学生 5 万多人,教学科研人员 4200 多人,其中有中科院院士 6 人、工程院院士 7 人,具有各类高级职称者 1900 多人,拥有长江学者特聘教授岗位 22 个。作为国家重要的科研中心之一,学校设有国家、省部级重点实验室和工程研究中心等国家科研基地 16 个。学校还设有附属医院和 2 所附属学校。
近年来同济大学正在探索并逐步形成有自己特色的现代教育思想和办学理念。以本科教育为立校之本,以研究生教育为强校之路。确立“知识、能力、人格”三位一体的全面素质教育和复合型人才培养模式。坚持“人才培养、科学研究、社会服务、国际交往”四大办学功能协调发展,努力强化服务社会的功能,实现大学功能中心化。以国家科技发展战略和地区经济重点需求为指针,促进传统学科高新化、新兴学科强势化、学科交叉集约化。与产业链紧密结合,形成优势学科和相对弱势学科互融共进的学科链和学科群,构建综合性大学的学科体系,其中桥梁工程、海洋地质、城市规划、结构工程、道路交通、车辆工程、环境工程等学科在全国居领先地位。在为国家经济建设和社会发展做贡献的过程中,争取更多的“单项冠军”,提升学校的学术地位和社会声誉。学校正努力建设文理交融、医工结合、科技教育与人文教育协调发展的综合性、研究型、国际知名高水平大学。
同济大学已建成的校园占地面积 3700 多亩,分五个校区,四平路校区位于上海市四平路,沪西校区位于上海市真南路,沪北校区位于上海市共和新路,沪东校区位于上海市武东路。正在建设中的嘉定校区位于安亭上海国际汽车城内。
同济大学研究生院简介
同济大学一贯重视研究生教育,早在 20 世纪 50 年代初即在部分专业招收培养研究生。 1978 年学校恢复招收硕士研究生, 1981 年起招收博士研究生,同年被国务院学位委员会批准为首批有权授予博士、硕士学位的单位。 1986 年经国务院批准试办研究生院, 1996 年经评估正式成立研究生院,成为我国培养高层次专门人才的重要基地之一。同济大学现有一级学科博士学位授权点 12 个,二级学科博士学位授权点 68 个(含自主设置 10 个二级学科博士点),硕士学位授权点 147 个(含自主设置 7 个二级学科硕士点),分属哲学、经济学、法学、教育学、文学、理学、工学、医学、管理学等 9 个学科门类。其中土木工程、建筑学、交通运输工程、海洋科学、环境科学与工程、力学、材料科学与工程等学科处在全国优势和领先地位,机电、管理、理学等学科近年有了长足进展。我校还设有 13 个博士后科研流动站。近些年来,为了适应我国经济建设和社会发展的需要,学校还十分注重培养不同类型、多个层次、多种规格的高层次专门人才。学校既设科学学位,又设工商管理、行政管理、建筑学、临床医学、工程硕士(含 21 个工程领域)、口腔医学等多种专业学位;既培养学术型、研究型研究生,又培养应用型、复合型专业学位研究生;既有在校全日制攻读学位模式,又有在职人员攻读专业硕士学位或以同等学力申请硕士学位、中职教师在职攻读硕士学位、高校教师在职攻读硕士学位模式。此外,还面向社会举办多种专业研究生课程进修班等,充分发挥了我校学科优势和特色,由此形成了多渠道、多规格、多层次的办学模式,取得了良好的社会效益。
同济大学研究生院是校长领导下具有相对独立职能的研究生教学和行政管理机构,下设招生办公室、管理处、培养处、学位办公室、学科建设办公室和行政办公室。同时,学校党委还专门设立了研究生工作部。学校设有校学位评定委员会,各学院有学位评定分委员会,并设立了各学科、专业委员会,配有学位管理工作秘书、教务员、班主任、研究生教学秘书等教辅人员。研究生院曾多次被评为全国和上海市学位与研究生教育管理工作先进集体。
二十多年来,同济大学始终把全面提高培养质量作为研究生教育改革的指导思想,在严格质量管理方面采取了一系列切实有效的措施,取得了较好效果。在连续多年全国百篇优秀博士学位论文评选中,有 7 篇入选。同济大学为国家培养了一大批高素质的高级专门人才,至今已授予博士学位 1311 人,硕士学位近 9504 人,其中有相当一部分已成为我国社会主义现代化建设的重要骨干力量。至 2004 年 9 月,在校博士、硕士研究生约达 11000 多人,专业学位硕士生约 2700 人。根据本校研究生教育发展规划, 2006 年计划招收博士生、硕士生(含专业学位研究生)超过 4000 名。同济大学正在为我国经济建设和社会发展输送高层次人才做出更大的贡献。
收费和奖励
1) 按照国务院常务会议精神,从 2014 年秋季学期起,向所有纳入国家招生计划的新入学研究生收取学费。其中:工程管理硕士(125600)、MBA[微博](125100)、MPA(125200)、法律硕士(非法学)(035101)、软件工程领域工程硕士(085212)、金融硕士(025100)、会计硕士(125300)、翻译硕士(055101、055109)、护理硕士(105400)、教育硕士(045100)、汉语国际教育硕士(045300)、人文学院(210)的艺术硕士(135108)专业学位研究生的学费标准另行公布,其它硕士研究生学费不超过 8000 元/学年。
2) 对非定向就业学术型研究生和非定向就业专业学位硕士研究生,同济大学有完善的奖励体系(工程管理硕士(125600)、MBA(125100)、MPA(125200)、法律硕士(非法学)(035101)、软件工程硕士(085212)、金融硕士(025100)、会计硕士(125300)、翻译硕士(055101、055109)、护理硕士(105400)、教育硕士(045100)、汉语国际教育硕士(045300)、人文学院(210)的艺术硕士(135108)的奖励由培养单位另行制订)。对亍纳入奖励体系的非定向就业学术型硕士生和非定向就业专业学位硕士生在入学时全部都可以获得 8000 元/学年的全额学业奖学金,该奖学金用以抵充学费。对纳入奖励体系的硕士研究生还可获得不少亍 600 元/月的励学金,每年发放10 个月。另外,纳入奖励体系的非定向就业研究生都可以申请励教和励管的岗位,获得额外的资励。所有非定向就业硕士研究生在学期间纳入上海市城镇居民基本医疗保险,可申请办理国家励学贷款,可参加有关专项奖学金评定。
3)工商管理硕士在职班、金融硕士在职班、公共管理硕士、工程管理硕士、会计硕士、护理硕士、教育硕士、汉语国际教育硕士、人文学院的艺术硕士采取在职学习方式,考生录取后,人事关系不人事档案不转入学校,在读期间不参加上海市大学生医疗保障,学校不安排住宿,毕业时不纳入就业计划。