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吉亚丽 教授

东华大学

材料学院高分子科学与工程系

个人履历

2006年7月至今,在东华大学材料科学与工程学院从事教学和科研工作

2006年3月获东华大学材料科学与工程专业工学博士学位

2002年7月获新疆大学物理化学专业理学硕士学位

主讲课程

“生物医用高分子材料”、“微机上机”

 

研究方向

1. 生物医用高分子材料;

2. 仿生智能高分子材料;

3. 聚合物共混及纳米复合


研究成果

主要论文

1.Yongfang Guo, Kai Liang, Yali Ji*. New degradable   composite elastomers of POC/PCL fabricated via in-situ copolymerization   blending strategy. European Polymer Journal, 110, 337-343, 2019.

2.Yajing Zhou, Xin Zhou, Kai Liang,Yali Ji*. Degradable   bioelastomers prepared by a facile melt polycondensation of citric acid and   polycaprolactone-diol. Journal of Macromolecular Science, Part B: Physics,   57(10), 679-690, 2018.

3.Yiwen Xu, Kai Liang, Wajeeh Ullaha, Yali Ji*, Jinghong   Ma*. Chitin nanocrystal enhanced wet adhesion performance of mussel-inspired   citrate-based soft-tissue adhesive, Carbohydrate Polymers. 190, 324-330,   2018.

4.Lei Zhu, Yuanzheng Zhang, Yali Ji*. Fabricating   poly(1,8-octanediol citrate) elastomer based fibrous mats via electrospinning   for soft tissue engineering scaffold. Journal of Materials Science: Materials   in Medicine, 28(6), 1-10, 2017.

5.Yaling Tian, Kai Liang, Xin Wang, Yali Ji*. Fabrication   of nanocomposite bioelastomer porous scaffold based on chitin nanocrystal   supported emulsion-freeze-casting. ACS Sustainable Chemistry and Engineering,   5, 3305-3313, 2017.

6.Xin Wang, Kai Liang, Yaling Tian, Yali Ji*. A facile   and green emulsion casting method to prepare chitin nanocrystal reinforced   citrate-based bioelastomer. Carbohydrate Polymers, 157, 620-628, 2017.

7.王莉, 汪刘建, 吉亚丽*, 邻苯二酚基团改性壳聚糖组织胶黏剂的制备和表征, 功能高分子学报, 30(1), 59-66, 2017.

8.Yali Ji*, Ting Ji, Kai Liang, Lei Zhu. Mussel-inspired   soft-tissue adhesive based on poly(diol citrate) with catechol functionality.   Journal of Materials Science: Materials in Medicine, 27(2), 30(1-9), 2016.

9.Lei Zhu, Kai Liang, Yali Ji*. Prominent reinforcing   effect of chitin nanocrystals on electrospun polydioxanone nanocomposite   fiber mats. Journal of the Mechanical Behavior of Biomedical Materials, 44C,   35-42, 2015.

10.汲婷,吉亚丽*,含多巴胺的聚柠檬酸酯基组织胶黏剂的制备, 功能高分子学报,27(3),291, 2014.

11.Yali Ji*, Xuemin Wang, Kai Liang. Regulating the   mechanical properties of poly(1,8-octanediol citrate) bioelastomer via   loading of chitin nanocrystals. RSC Advances, 4(78), 41357-63, 2014.

12.Weixia Yan, Libin Shen, Yali Ji*, Qing Yang, Xinyuan   Shen. Chitin Nanocrystal Reinforced Wet-Spun Chitosan Fibers. Journal of   Applied Polymer Science, 131(19), 40852, 2014.

13.Libin Sheng, Rongjia Jiang, Yu Zhu, Yali Ji*.   Electrospun Cellulose Nanocrystals/Polycaprolactone Nanocomposite Fiber Mats.   Journal of Macromolecular Science, Part B: Physics, 53(5), 820, 2014.

14.Yali Ji*, Kai Liang. Xinyuan Shen, Gary L. Bowlin.   Electrospinning and characterization of chitin nanofibril/polycaprolactone   nanocomposite fiber mats. Carbohydrate Polymers, 101(1), 68, 2014.

15.Yali Ji, Patricia S. Wolfe, Isaac A. Rodriguez, Gary L.   Bowlin. Preparation of chitin nanofibril/polycaprolactone nanocomposite from   a nonaqueous medium suspension. Carbohydrate Polymers, 87: 2313-2319, 2012.

16.Yali Ji, Kai Liang, Jinghong Ma, Borun Liang. Morphologies   of an amphiphilic diblock copolymer of poly (ethylene oxide)-b-polystyrene   and its blends with poly (2,6-dimethyl-1,4-oxide). Polymer Bulletin, 60:   371-377, 2008.

17.Yali Ji, Wengang Li, Jinghong Ma, Borun Liang. A novel   approach to the preparation of nanoblends of poly(2,6-dimethyl-1,4-phenylene   oxide)/polyamide 6. Macromolecular Rapid Communication, 26: 116-120, 2005.

18.Yali Ji, Jinghong Ma, Borun Liang, A novel approach to   the preparation of nano-blends of PPO/PS/PA6. Polymer Bulletin, 54: 109-115,   2005.

近几年承担的科研项目

1.甲壳素晶须复合可降解网络型聚酯生物弹性体的制备、微观结构及力学性能调控,2014,国家自然科学基金,主持

2.应用于软组织工程支架的网络型可降解聚酯生物弹性体材料及其静电纺丝研究,2010,上海市自然科学基金,主持

3.用于CO2可逆捕集分离的有机介孔纤维材料的结构设计,2010,教育部博士点基金,主持

4.具有抗污性能的树状大分子纳米器件的设计及其肿瘤精准诊疗作用,2017,上海市科学技术委员会,主要参与人员

5.超滑导尿管改性用含银系抗菌材料涂层液的研制及应用,2018,技术开发,主持

6.多功能壳聚糖纤维手术缝合线产业化生产关键技术,2017,技术开发,主持

7.纺织品竹浆纤维与其他纤维混合物的定性定量分析方法标准制定,2015,技术服务,主持


热门排行
1
采用电纺丝法制备了前驱体纳米纤维膜,固化的纳米纤维均匀分布。在随后的热解过程中,PVP被碳化成相互连接的3D碳骨架,纳米纤维形态得到了很好的保存。

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