论文著作:
(1)H.Y. He; C. X. Sun; Y.X. Weng; H.J. Huang; P. Ni; Y. Fang; R. Xu; Z.C. Wang; H.Q. Liu*, Catechol modification of non-woven chitosan gauze for enhanced hemostatic efficacy. Carbohydr. Polym. 2022,286, 119319. DOI: 10.1016/j.carbpol.2022.119319 (1区, IF: 9.38)
(2)H.Y. He, W. K. Zhou, J. Gao, F. Wang, S. B. Wang, Y. Fang*, Y. Gao, W. Chen*, W. Zhang, Y. X. Weng, Z. C. Wang, H.Q. Liu*, Efficient, biosafe and tissue adhesive hemostatic cotton gauze with controlled balance of hydrophilicity and hydrophobicity, Nat. Commun., 2022, 13,552, DOI: 10.1039/s41467-022-28209-8. (1区, IF: 14.92)
(3)X. Fan, Y. Fang*, W. Zhou, L. Yan, Y. Xu, H. Zhu, H. Liu*, Mussel foot protein inspired tough tissue-selective underwater adhesive hydrogel, Mater. Horizon, 2021, 8, 997, DOI: 10.1039/D0MH01231A. 高被引论文,(1区, IF: 13.26)
(4)Y. Xu, Y. Fang*, Y. Ou, L. Yan, Q. Chen*, C. Sun, J. Chen, H. Liu*, Zinc metal–organic framework@chitin composite sponge for rapid hemostasis and antibacterial infection, ACS Sustainable Chem. Eng., 2020, 8, 18915, DOI: 10.1021/acssuschemeng.0c06044. (1区, IF: 8.20)
(5)X. Wu, Z. Tang, X. Liao*, Z. Wang*, H. Liu*, Fabrication of chitosan@calcium alginate microspheres with porous core and compact shell, and application as a quick traumatic hemostat, Carbohydr. Polym., 2020, 247, 116669. (1区, IF: 9.38)
(6)X. Fan, W. Zhou, Y. Chen, L. Yan, Y. Fang*, H. Liu*, An Antifreezing/ Antiheating Hydrogel Containing Catechol Derivative Urushiol for Strong Wet Adhesion to Various Substrates. ACS Appl. Mater. Interface, 2020, 12, 32031. (1区, IF: 9.23)
(7)Y. Fang*, Y. Xu, Z. Wang, W. Zhou, L. Yan, X. Fan, H. Liu*, 3D porous chitin sponge with high absorbency, rapid shape recovery, and excellent antibacterial activities for noncompressible wound. Chem. Eng. J., 2020, 388, 124169. (1区, IF: 13.27)
(8)Z. Wang, P. Li, Y. Fang*, L. Yan, W. Zhou, X. Fan, H. Liu*, One-step recovery of noble metal ions from oil/water emulsions by chitin nanofibrous membrane for further recycling utilization. Carbohydr. Polym., 2019, 223, 115064. (1区, IF: 9.38)
(9)W. Zhou, Y. Fang*, P. Li, L. Yan, X. Fan, Z. Wang, W. Zhang, H. Liu*, Ampholytic Chitosan/Alginate Composite Nanofibrous Membranes with Super Anti-Crude Oil-Fouling Behavior and Multifunctional Oil/Water Separation Properties. ACS Sustainable Chem. Eng., 2019, 7, 15463-70. (1区, IF: 8.20)
(10)L. Yan, P. Li, W. Zhou, Z. Wang, X. Fan, M. Chen, Y. Fang*, H. Liu*, Shrimp shell-Inspired antifouling chitin nanofibrous membrane for efficient oil/water emulsion separation with In Situ removal of heavy metal ions. ACS Sustainable Chem. Eng., 2019, 7, 2064−2072. (1区, IF: 8.20)
(11)J. Chen, W. Cheng, S. Chen, W. Xu, J. Lin, H. Liu*, Q. Chen*, Urushiol-functionalized mesoporous silica nanoparticles and their self-assembly into a Janus membrane as a highly efficient hemostatic material. Nanoscale, 2018, 10, 22818-22829. (1区, IF: 7.79)
(12)X. Sun, Y. Fang*, Z. Tang, Z. Wang, X. Liu*, H. Liu*, Mesoporous silica nanoparticles carried on chitosan microspheres for traumatic bleeding control. Int. J. Biol. Macromol., 2019, 127, 311-319.
(13)J. Chen, S. Chen, W. Cheng, J. Lin, S. Hou, H. Liu*, Q. Chen*, Fabrication of porous starch microspheres by electrostatic spray and supercritical CO2 and its hemostatic performance, Int. J. Biol. Macromol., 2019, 123, 1-9.
(14)L. Huang, L. Xiao, A. Jung Poudel, J. Li, P. Zhou, M. Gauthier, H. Liu*, Z. Wu*, G. Yang*, Porous chitosan microspheres as microcarriers for 3D cell culture, Carbohydr. Polym., 2018, 202, 611.
(15)M. Pan, Z. H. Tang, J. B. Tu, Z. C. Wang*, Q. H. Chen, R. D. Xiao*, H. Q. Liu*, Porous chitosan microspheres containing zinc ion for enhanced thrombosis and hemostasis,Mater. Sci. Eng. C,2018, 85, 27.
(16)W. Qin, J. X. Li, J. B. Tu, H.Q. Yang, Q. H. Chen*, H. Q. Liu*, Fabrication of porous chitosan membranes composed of nanofibers by low temperature thermally induced phase separation, and their adsorption behavior for Cu2+, Carbohydr. Polym., 2017,178,338.
(17)X. W. Wu, X. Sun, M. Pan, H. Q. Liu*, Sustained drug release from chitosan@alginate microspheres with porous core and closed outer surface pore structure, J. Control. Release, 2017, 259, e5.
(18)X. Sun, Z. H. Tang, M. Pang, Z. C. Wang, H. Q. Yang, H. Q. Liu*, Chitosan/kaolin composite porous microspheres with high hemostatic efficacy, Carbohydr. Polym., 2017,177,135.
(19)J. Li, X. Wu, Y. Wu, Z. Tang, X. Sun, M. Pan, Y. Chen, J. Li, R. Xiao, Z. C. Wang*, H. Q. Liu*. Porous chitosan microspheres for application as quick in vitro and in vivo hemostat. Mater. Sci. Eng. C,2017, 77, 411-419.
(20)L. Zhang, J. Li, H.Q. Liu*, Thermal inverse phase transition of azobenzene hydroxyl- -propylcellulose in aqueous solutions, Cellulose, 2016, 23, 2177
(21)W. Zhang, M. Liu, Y.Y. Liu, F.F. Wei, R.D. Xiao, H.Q. Liu*, 3D porous poly(L-lactic acid) foams composed of nanofibers, nanofibrous microsheaves and microspheres and their application in oil–water separation, J. Mater. Chem. A, 2015, 3, 14054-14062.
(22)Y.Y. Liu, W. Qin, Q. Y. Wang, R.L. Liu, H.Q. Liu*, Glassy carbon nanofibers from electrospun cellulose nanofiber, J. Mater. Sci., 2015, 50, 563.
(23)W. Qin, Z.J. Li, J. X. Li, L. H. Zhang, R. L. Liu, H.Q. Liu*, Synthesis and characterization of azobenzene hydroxypropyl cellulose with photochromic and thermotropic liquid crystal properties, Cellulose, 2015,22, 203-214.
(24)R.L. Liu, K.N. Li, M. Liu, Y.Y. Liu, H.Q. Liu*, Free PLLA spherulites grown from thermally induced phase separation and the crystallization kinetics, J. Polym. Sci. B Polym. Phys., 2014, 52, 1476. (Featured in front cover).
(25)Z.J. Li, D. Zhang, J.B. Weng, B. Zheng, H.Q. Liu*, Synthesis and characterization of photochromic azobenzene cellulose ethers, Carbohydr. Polym., 2014, 99, 748-754.
(26)J.N. Wang, W. Qin, X.Q. Liu, H.Q. Liu*, Synthesis and characterization of hydroxyapatite on hydrolyzed polyacrylonitrile nanofiber templates. RSC Adv., 2013, 3, 11132-11139.
(27)M.Y. Wu, Q.Y. Wang, X.Q. Liu, H.Q. Liu*, Biomimetic synthesis and characterization of carbon nanofiber/hydroxyapatite composite scaffolds, Carbon, 2013, 51, 335-345.
(28)K.N. Li, J.N. Wang, X.Q. Liu, H.Q. Liu*,Biomimetic growth of hydroxyapatite on phosphorylated electrospun cellulose nanofibers. Carbohydr. Polym., 2012, 90, 1573-81.
(29)H.Q. Liao, Y.Q. Wu, M.Y. Wu, X.R. Zhan, H.Q. Liu*, Aligned electrospun cellulose fibers reinforced epoxy resin composite films with high visible light transmittance, Cellulose, 2012, 19, 111-9.
(30)D. Zhang, J. Xie, P. Yu, X.K. Huang, M.H. Yang, H.Q. Liu*, Antifungal activity and humidity sensitivity of quaternized cellulose synthesized in NaOH/urea aqueous solution, Cellulose, 2012, 19, 189-98.
(31)C.Y. Tang, M.Y. Wu, Y.Q. Wu, H.Q. Liu*, Effects of fiber surface chemistry and size on the structure and properties of poly(vinyl alcohol) composite films reinforced with electrospun fibers, Composites Part A, 2011, 42, 1100-9.
(32)R.L. Liu, H.Y. Ye, X.P. Xiong, H.Q. Liu*, Fabrication of TiO2/ZnO composite nanofibers by electrospinning and their photocatalytic property, Mater. Chem. Phys., 2010, 121, 432-9.
(33)R.L. Liu, A.H. Xiao, H.Q. Liu*, Preparation and photocatalytic property of mesoporous ZnO/SnO2 composite nanofibers, 2010, J. Alloy Compd.,503, 103-10.
(34)C. Y. Tang, H. Q. Liu*, Cellulose nanofiber reinforced poly(vinyl alcohol) composite film with high visible light transmittance, Composites: Part A, 2008, 39, 1638-43.
(35)H. Q. Liu*, J.X. Yang, J.H. Liang, Y.X. Huang,ZnO nanofiber and nanoparticle synthesized through electrospinning and their photocatalytic activity under visible light, J. Amer. Ceram. Soc., 2008, 91, 1287.
(36)C.Y. Tang, S.H. Ye,H. Q. Liu*, Electrospinning of poly(styrene-co-maleic anhydride) (SMA) and water-swelling behavior of crosslinked/hydrolyzed SMA hydrogel nanofibers”, Polymer, 2007, 48, 4482.
(37)M. Zheng, R.H. Wu, H. Q. Liu*, Ionic strength and pH- responsive poly(acrylamide-co-maleic acid) hydrogel nanofiber, Macromol. Chem. Phys., 2007, 208, 886-892.
(38)H.Q. Liu, Y.L. Hsieh*, Preparation of water-absorbing polyacrylonitrile nanofibrous membrane, Macromol. Rapid Commun., 2006, 27(2), 142-5.