[1] H. Sorg et al., "Wound repair and regeneration," Eur. Surg. Res. 49(24), 35–43 (2012).
[2] A. W. C. Chua et al., "Skin tissue engineering advances in severe burns: review and therapeutic applications," Burns Trauma. 4, 3–17 (2016).
[3] J. S. Boateng et al., "Wound healing dressings and drug delivery systems: a review," J. Pharm. Sci. 97, 2892–2923 (2008).
[4] X. Zhao et al., "Antibacterial anti-oxidant electroactive injectable hydrogel as self-healing wound dressing with hemostasis and adhesiveness for cutaneous wound healing," Biomaterials. 122, 34–47 (2017).
[5] G. Jin et al., "Tissue engineered plant extracts as nanofibrous wound dressing," Biomaterials. 34, 724–734 (2013).
[6] P. David et al., "Enhanced performance and mode of action of a novel antibiofilm hydrofiberwound dressing," Biomed. Res. Int. 2016, 7616471 (2016).
[7] R. G. Sibbald et al., "Reduction of bacterial burden and pain in chronic wounds using a new polyhexamethylenebiguanide antimicrobial foam dressing-clinical trial results," Adv. Skin Wound Care. 24, 78–84 (2011).
[8] X. Zhao et al., "Antibacterial anti-oxidant electroactive injectable hydrogel as self-healing wound dressing with hemostasis and adhesiveness for cutaneous wound healing," Biomaterials. 122, 34–47 (2017).
[9] J. Boateng et al., "Polyox and carrageenan based composite film dressing containing anti-microbial and anti-inflammatory drugs for effective wound healing, " Int. J. Pharmaceut. 441, 181–191 (2013).
[10] S. Li et al., "A promising wound dressing material with excellent cytocompatibility and proangiogenesis action for wound healing: Strontium loaded Silk fibroin/Sodium alginate (SF/SA) blend films," Int. J. Biol. Macromol. 104, 969–978 (2017).
[11] S. Gu et al., "Electrospinning of gelatin and gelatin/poly(L-lactide) blend and its characteristics for wound dressing, " Mater. Sci. Eng. C 28, 1822–1828 (2009).
[12] T. He et al., "Electrospinning polyvinylidene fluoride fibrous films containing anti-bacterial drugs used as wound dressing," Colloid. Surf. B Biointerfaces. 130, 278–286 (2015).
[13] S. Chao et al., "Synthesis and characterization of tigecycline-loaded sericin/poly(vinyl alcohol) composite fibers via electrospinning as antibacterial wound dressings," J. Drug Deliv. Sci. Tech. 44, 440–447 (2018).
[14] Y. Esparza et al., "Preparation and characterization of thermally crosslinked poly(vinylalcohol)/feather keratin nanofiber scaffolds," Mater. Design. 133, 1–9 (2017).
[15] M. Qin et al., "One step fabrication and application of antibacterial electrospunzein/cinnamon oil film wound dressing via in situ electrospinning process," Chem. Res. Chin. U 37, 464–469 (2021).
[16] Z. Wei et al., "Electrospun antibacterial nanofibers for wound dressings and tissue medicinal fields: A review," J. Innov. Opt. Heal. Sci. 13, 2030012 (2020).
[17] W. Dong et al., "Performance of polyvinyl pyrrolidone-isatis root antibacterial wound dressings produced in situ by handheld electrospinner," Colloid. Surf. B 188, 110766 (2020).
[18] L. Zhang et al., "Multilayer electrospun nanofibrous films with antibacterial property for air filtration," Appl. Surf. Sci. 515, 145962 (2020).
[19] W. T. Koo et al., "Hierarchical metal-organic framework-assembled film filter for e±cient removal of particulate matter," ACS Appl. Mater. Interfaces. 10, 19957–19963 (2018).
[20] J. Xiong et al., "Sandwich-structured fibrous films with low filtration resistance for effective PM2.5 capture via one-step needleless electrospinning," Mater. Res. Express. 6, 035027 (2019).
[21] R. Al-Attabi et al., "High e±ciency poly(acrylonitrile) electrospun nanofiber films for airborne nanomaterials filtration, " Adv. Eng. Mater. 20, 1700572 (2018).
[22] R. Zhang et al., "Nanofiber air filters with high-temperature stability for e±cient PM2.5 removal from the pollution sources," Nano Lett. 16, 3642–3649 (2016).
[23] M. Qiu et al., "Strategy to manipulate molecular orientation and charge mobility in D-A type conjugated polymer through rational fluorination for improvements of photovoltaic performances," J. Phys. Chem. C 120, 22757–22765 (2016).
[24] M. Qiu et al., "Biocompatible and biodegradable inorganic nanostructures for nanomedicine: Silicon and black phosphorus," Nano Today 25, 135–155 (2019).
[25] T. Fan et al., "Black phosphorus: A novel nanoplatform with potential in the field of bio-photonic nanomedicine," J. Innov. Opt. Heal. Sci. 11, 1830003 (2018).
[26] Z. Wang et al., "Antibacterial and environmentally friendly chitosan/polyvinyl alcohol blend films for air filtration," Carbohyd. Polym. 198, 241–248 (2018).
[27] J. Su et al., "Hierarchically structured TiO2/PAN nanofibrous films for high-e±ciency air filtration and toluene degradation," J. Colloid. Interf. Sci. 507, 386–396 (2017).
[28] C. Tshangana1 et al., "Poly (ether) sulfone electrospun nanofibrous films embedded with graphene oxide quantum dots with antimicrobial activity," Environ. Sci. Pollut. R. 27, 26845–26855 (2020).
[29] J. Li et al., "Nanofibrous film of graphene oxide-inpolyacrylonitrile composite with low filtration resistance for the effective capture of PM2.5," J. Film Sci. 551, 85–92 (2018).
[30] Z. Wei et al., "High-performance filter film composed of oxidized Poly (arylene sulfide sulfone) nanofibers for the high-e±ciency air filtration," J. Hazard Mater. 417, 126033 (2021).
[31] Z. Wei et al., "A novel high-durability oxidized poly (arylene sulfide sulfone) electrospun nanofibrous film for direct water-oil separation," Sep. Purif. Technol. 234, 116012 (2020).
[32] Z. Liu et al., "Solvent-resistant polymeric micro-filtration films based on oxidized electrospun poly (arylene sulfide sulfone) nanofibers," J. Appl. Polym. Sci. 137, 48506 (2020).
[33] X. Zhao et al., "Free-standing graphene oxidepalygorskite nanohybrid membrane for oil/water separation," ACS Appl. Mater. Interfaces 8, 8247–8256 (2016).