代表性成果:高性能聚醚醚酮制备与微粉化关键技术及其应用;浙江省科技进步三等奖;2026
代表性论文:
[1] He H, Hu H, Du K M, et al. Prospects of High Value Recycling Methods for Polyurethane Based on Selective cleavage of CO/CN Bonds[J]. Green Chemistry, 2025, 27, 8467.
[2] He H, Xie S, Du J, et al. Nanotoroid Self-Weaving from Nanofibers Assembled by a Radially Symmetrical POSS-Based Dendrimer[J]. ACS Macro Letters, 2025, 14(8): 1162-1168.
[3] He H, Liu Y, Peng X, et al. Design of high impact-resistant PBO fiber/epoxy vitrimer composites: Multi-scale energy dissipation strategy[J]. Chemical Engineering Journal, 2025, 505: 159215.
[4] He H W, Du K M, Yu H J, et al. A new strategy for efficient chemical degradation and recycling of polyurethane materials: a multi-stage degradation method[J]. Green Chemistry, 2023, 25(16): 6405-6415.
[5] He H, Su H, Yu H, et al. Chemical recycling of waste polyurethane foams: efficient acidolysis under the catalysis of zinc acetate[J]. ACS Sustainable Chemistry & Engineering, 2023, 11(14): 5515-5523.
[6] He H, Zheng K, Du J, et al. Controllable chiral inversion via thioether bond-activated J-and H-aggregation transformation[J]. Chemical Communications, 2023, 59(25): 3759-3762.
[7] He H, He J, Zheng K, et al. Fantastic supramolecular chiral self-assembly of POSS based dendrimers: From helical nano-fibers to nano-toroids and loofah-like superstructures[J]. European Polymer Journal, 2023, 184: 111768.
[8] Peng X, He H, Liu Y, et al. Ballistic performance analysis of PBO fiber‐reinforced epoxy composites through resin matrix rigidity and toughness modulation[J]. Polymer Composites, 2025, 46(10): 9540-9552.
[9] He H, Xie S, Zheng K, et al. Insight into the drying-mediated and thioether bond activated chiral inversion assembly of nano building blocks[J]. European Polymer Journal, 2024, 210: 112994.
[10] He H, Zeng X, Ma M, et al. Effect of low molecular weight component on the melting and crystallization behavior of poly (ether ether ketone) from a rheological insight[J]. Polymer Engineering & Science, 2025, 65(5): 2731-2742.
授权发明专利:
[1] 一种聚氨酯泡沫降解固体产物的高值化利用方法, ZL 2024 1 1183357.8
[2] 一种凝胶辅助的PBO纤维表面无损处理方法,ZL 202211656681.8
[3] 一种PBO纤维增强防弹复合材料用树脂的制备方法与应用,ZL202211656688.X
[4] 一种利用酸性离子液体降解聚氨酯软泡的方法,ZL202110931531.2
[5] 一种多级降解回收聚氨酯泡沫中聚醚多元醇的方法,ZL202110931533.1
[6] 一种废弃聚氨酯泡沫降解与回收方法及装置,ZL202211054512.7
[7] 一种金属化合物催化剂在催化废弃聚氨酯泡沫酸解反应中的应用,ZL20221 0969301.X
[8] 一种高骨活性聚醚醚酮多孔复合材料及其制备方法,ZL202211062673.0