Integration of Water-Mediated H-Bonds-Domestication and Optical Skin-Transparency Strategy for Microplastics-Free Bio-based Materials Revolution

Xinhua Liu , Yitong Wang , Xuechuan Wang , Long Xing , Linbin Li

Advanced Fiber Materials ›› : 1 -18.

PDF
Advanced Fiber Materials ›› :1 -18. DOI: 10.1007/s42765-025-00600-2
Research Article
research-article

Integration of Water-Mediated H-Bonds-Domestication and Optical Skin-Transparency Strategy for Microplastics-Free Bio-based Materials Revolution

Author information +
History +
PDF

Abstract

Emerging bio-based plastics offer a promising next-generation solution to address two persistent challenges in the plastics industry: environmental pollution and the hazards posed by microplastics (MPs). Here, we propose a microplastics-free transparent bio-based plastic (MCBP) substitute derived from pre-processed natural skin by an integrative water-mediated hydrogen-bond domestication and optical skin-transparency strategy. The MCBP retains the intact fibrous 3D-network and multi-hierarchical structure of natural skin, predominantly composed of collagen fibers, resulting in exceptional physicochemical properties, including biodegradability, viscoelasticity, toughness, softness, and mechanical strength. By simultaneously regulating glycerol (Gly) and water content to modulate hydrogen bonds and removing non-collagenous components from the skin, the arrangement of collagen fibers shows more control-oriented with the reduced hydrogen bonding among the binary solvent and collagen fibers, thus minimizing light scattering and further achieving plastic-like optical transparency of natural skin. The strategy imparts water-responsive shape-memory to MCBP, enabling it to be processed into diverse two-dimensional or three-dimensional shapes, significantly extending its practical service life and recyclability. Notably, MCBP achieves MPs-free production while also enabling the adsorption and removal of MPs throughout its life cycle. Furthermore, MCBP has been shown to substantially enhance food shelf-life when used for active food packaging, underscoring its potential for diverse practical applications.

Keywords

Bio-based plastics / H-bonds-domestication / Skin transparency / Microplastics-free / Collagen fiber

Cite this article

Download citation ▾
Xinhua Liu, Yitong Wang, Xuechuan Wang, Long Xing, Linbin Li. Integration of Water-Mediated H-Bonds-Domestication and Optical Skin-Transparency Strategy for Microplastics-Free Bio-based Materials Revolution. Advanced Fiber Materials 1-18 DOI:10.1007/s42765-025-00600-2

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

NandaS, PatraBR, PatelR, BakosJ, DalaiAK. Innovations in applications and prospects of bioplastics and biopolymers: a review. Environ Chem Lett, 2022, 20379.

[2]

ShiJX, CicciaNR, PalS, KimDD, BrunnJN, Lizandara-PueyoC, ErnstM, HaydlAM, MessersmithPB, HelmsBA, HartwigJF. Chemical modification of oxidized polyethylene enables access to functional polyethylenes with greater reuse. J Am Chem Soc, 2023, 14521527.

[3]

WangCQ, XiaJ, ZhangYX, HuXQ, JianZB. Photodegradable polar-functionalized polyethylenes. Natl Sci Rev, 2023, 10nwad039.

[4]

BaigN, AlghunaimiFI, SalehTA. Hydrophobic and oleophilic carbon nanofiber impregnated styrofoam for oil and water separation: a green technology. Chem Eng J, 2019, 3601613.

[5]

MaX, LinXH, ChangCY, DuanB. Chitinous bioplastic enabled by noncovalent assembly. ACS Nano, 2024, 188906.

[6]

ChenTL, PangZQ, HeSM, LiY, ShresthaS, LittleJM, YangHC, ChungTC, SunJY, WhitleyHC, LeeIC, WoehlTJ, LiT, HuLB, ChenPY. Machine intelligence-accelerated discovery of all-natural plastic substitutes. Nat Nanotechnol, 2024, 19782.

[7]

PottingerAS, GeyerR, BiyaniN, MartinezCC, NathanN, MorseMR, LiuC, HuSY, BruynMD, BoettigerC, BakerE, McCauleyDJ. Pathways to reduce global plastic waste mismanagement and greenhouse gas emissions by 2050. Science, 2024, 3861168.

[8]

RosenboomJG, LangerR, TraversoG. Bioplastics for a circular economy. Nat Rev Mater, 2022, 7117.

[9]

FangX, TianNG, HuWY, QingYN, WangH, GaoX, QinYG, SunJQ. Dynamically cross-linking soybean oil and low-molecular-weight polylactic acid toward mechanically robust, degradable, and recyclable supramolecular plastics. Adv Funct Mater, 2022, 322208623.

[10]

HanJP, GuoYF, WangH, ZhangKY, YangDY. Sustainable bioplastic made from biomass DNA and ionomers. J Am Chem Soc, 2021, 14319486.

[11]

LiK, JinSC, JiangSC, LiXN, LiJJ, ShiSQ, LiJZ. Bioinspired mineral–organic strategy for fabricating a high-strength, antibacterial, flame-retardant soy protein bioplastic via internal boron–nitrogen coordination. Chem Eng J, 2022, 428132616.

[12]

XiaQQ, ChenCJ, YaoYG, LiJG, HeSM, ZhouYB, LiT, PanXJ, YaoY, HuLB. A strong, biodegradable and recyclable lignocellulosic bioplastic. Nat Sustain, 2021, 4627.

[13]

ZhangXQ, ZhangHS, ZhouGW, SuZP, WangXH. Flexible, thermal processable, self-healing, and fully bio-based starch plastics by constructing dynamic imine network. Green Energy Environ, 2024, 91610.

[14]

ZhouH, MaoYR, ZhengY, LiuTT, YangYF, SiCL, WangL, DaiL. Complete conversion of xylose-extracted corncob residues to bioplastic in a green and low carbon footprint way. Chem Eng J, 2023, 471144572.

[15]

ZhouYQ, HeYQ, LinXY, YueF, LiuMX. Sustainable, high-performance, and biodegradable plastic made from chitin. ACS Appl Mater Inter, 2022, 1446980.

[16]

MekonnenT, MussoneP, KhalilH, BresslerD. Progress in bio-based plastics and plasticizing modifications. J Mater Chem A, 2013, 113379.

[17]

ZhaiXS, WangWT, ZhangH, DaiYY, DongHZ, HouHX. Effects of high starch content on the physicochemical properties of starch/PBAT nanocomposite films prepared by extrusion blowing. Carbohydr Polym, 2020, 239116231.

[18]

ZhouGW, ZhangHS, SuZP, ZhangXQ, ZhouHN, YuL, ChenCJ, WangXH. A biodegradable, waterproof, and thermally processable cellulosic bioplastic enabled by dynamic covalent modification. Adv Mater, 2023, 352301398.

[19]

AguilarJM, BengoecheaC, PérezE, GuerreroA. Effect of different polyols as plasticizers in soy based bioplastics. Ind Crop Prod, 2020, 153112522.

[20]

AllemannMN, TessmanM, ReindelJ, ScofieldGB, EvansP, PomeroyRS, BurkartMD, MayfieldSP, SimkovskyR. Rapid biodegradation of microplastics generated from bio-based thermoplastic polyurethane. Sci Rep, 2024, 146036.

[21]

ThompsonRC, Courtene-JonesW, BoucherJ, PahlS, RaubenheimerK, KoelmansAA. Twenty years of microplastic pollution research—what have we learned?. Science, 2024, 386eadl2746.

[22]

AllenD, AllenS, AbbasiS, BakerA, BergmannM, BrahneyJ, ButlerT, DuceRA, EckhardtS, EvangeliouN, JickellT, KanakidouM, KershawP, LajP, LevermoreJ, LiDJ, LissP, LiuK, MahowaldN, MasqueP, MaterićD, MayesAG, McGinnityP, OsvathI, PratherKA, ProsperoJM, RevellLE, SanderSG, ShimWJ, SladeJ, SteinA, TarasovaO, WrightS. Micro-and nano-plastics in the marine-atmosphere environment. Nat Rev Earth Environ, 2022, 3393.

[23]

ChiaRW, LeeJY, ChaJ, Rodríguez-SeijoA. Methods of soil sampling for microplastic analysis: a review. Environ Chem Lett, 2023, 22227.

[24]

KoelmansAA, Redondo-HasselerharmPE, NorNHM, RuijterVN, MintenigSM, KooiM. Risk assessment of microplastic particles. Nat Revs Mater, 2022, 7138.

[25]

VethaakAD, LeglerJ. Microplastics and human health. Science, 2021, 371672.

[26]

JambeckJR, GeyerR, WilcoxC, SieglerTR, PerrymanM, AndradyA, NarayanR, LawKL. Plastic waste inputs from land into the ocean. Science, 2015, 347768.

[27]

EfferthT, PaulNW. Threats to human health by great Ocean garbage patches. Lancet Planet Health, 2017, 1e301.

[28]

ChengYR, HiranoE, WangH, KuwayamaM, MeijerEW, HuangHB, AidaT. Mechanically strong yet metabolizable supramolecular plastics by desalting upon phase separation. Science, 2024, 386875.

[29]

DingHL, WangJ, YuP, HeHF, WangHY, ZhangW, WangLC, LeiY, YuB. Rapidly recyclable, monomer recovery and flame-retardant bio-based polyimine networks. Chem Eng J, 2024, 481148024.

[30]

OhJ, ParkSB, ChaCY, JeonH, OhDX, KooJM, ParkJ. Compostable plastic/paper composites with high gas/moisture barriers for sustainable beverage bottles. Chem Eng J, 2024, 484149651.

[31]

GuicherdM, KhaledMB, GuéroultM, NommeJ, DalibeyM, GrimaudF, AlvarezP, KamionkaE, GavaldaS, NoëlM, VuilleminM, AmillastreE, LabourdetteD, CiociG, TournierV, KitpreechavanichV, DuboisP, AndréI, DuquesneS, MartyA. An engineered enzyme embedded into PLA to make self-biodegradable plastic. Nature, 2024, 631884.

[32]

WuXY, HartmannP, BerneD, BruynMD, CuminetF, WangZW, ZechnerJM, BoeseAD, PlacetV, CaillolS, BartaK. Closed-loop recyclability of a biomass-derived epoxy-amine thermoset by methanolysis. Science, 2024, 384eadj9989.

[33]

LiXL, WuRZ, FuT, LiZM, LiY, WangXL, WangYZ. A multifunctional bio-based polyester material integrated with high mechanical performance, gas barrier performance, and chemically closed-loop. Adv Funct Mater, 2024, 342400911.

[34]

XieL, WangXC, LiangS, ZouXL, SunSW, ZhouY, WeiC, BaiZ, YueOY, LiuXH. “Change according to the situation” – color-accommodative nature-skin-derived thermochromic membrane for active all-season thermal management. Adv Funct Mater, 2024, 342405582.

[35]

BaiZX, WangXC, HuangMC, FengYY, SunSW, ZhengMH, ZouXL, XieL, WangX, HaoDY, YueOY, ChenYN, LiuXH. Smart battery-free and wireless bioelectronic platform based on a nature-skin-derived organohydrogel for chronic wound diagnosis, assessment, and accelerated healing. Nano Energy, 2023, 118108989.

[36]

WeiC, WangXC, WangWN, SunSW, LiuXH. Bifunctional amphoteric polymer-based ecological integrated retanning/fatliquoring agents for leather manufacturing: simplifying processes and reducing pollution. J Clean Prod, 2022, 369133229.

[37]

LiLY, LuoXM, LiuY, TengM, LiuXD, ZhangX, LiuXH. Edible packaging revolution: enhanced functionality with natural collagen aggregates. Food Hydrocolloids, 2024, 156110331.

[38]

YueOY, WangXC, ZhouY, BaiZX, ZouXL, XieL, LiuXH. Auxetic structure-assisted triboelectric nanogenerators for efficient energy collection and wearable sensing. Adv Energy Mater, 2024, 142400212.

[39]

JingX, LiX, JiangYF, LouJ, LiuZQ, DingQJ, HanWJ. Degradable collagen/sodium alginate/polyvinyl butyral high barrier coating with water/oil-resistant in a facile and effective approach. Carbohyd Polym, 2022, 278118962.

[40]

FanX, KeT, GuHB. Multifunctional, ultra-tough organohydrogel E-Skin reinforced by hierarchical goatskin fibers skeleton for energy harvesting and self-powered monitoring. Adv Funct Mater, 2023, 332304015.

[41]

JinYH, LeiZP, TayntonP, HuangSF, ZhangW. Malleable and recyclable thermosets: the next generation of plastics. Matter, 2019, 11456.

[42]

NichollsBT, ForsBP. Closing the loop on thermoset plastic recycling. Science, 2024, 3846692.

[43]

CaterHL, AllenMJ, LinnellMI, RylskiAK, WuYD, LienHM, MangoliniF, FreemanBD, PageZA. Supersoft norbornene-based thermoplastic elastomers with high strength and upper service temperature. Adv Mater, 2024, 362402431.

[44]

ZhuGD, CoellnNV, HouY, Vazquez-MartelC, SpiegelCA, TegederP, BlascoE. Digital light 3D printing of double thermoplastics with customizable mechanical properties and versatile reprocessability. Adv Mater, 2024, 362401561.

[45]

GongK, HouL, WuPY. Hydrogen-bonding affords sustainable plastics with ultrahigh robustness and water-assisted arbitrarily shape engineering. Adv Mater, 2022, 342201065.

[46]

GuoF, WangY, JiangYQ, LiZS, XuZ, ZhaoXL, GuoTB, JiangW, GaoC. Hydroplastic micromolding of 2D sheets. Adv Mater, 2021, 332008116.

[47]

WangJX, EmmerichL, WuJF, VanaP, ZhangK. Hydroplastic polymers as eco-friendly hydrosetting plastics. Nat Sustain, 2021, 4877.

[48]

HeXY, ShiXL, WuXY, LiCZ, LiuWD, ZhangHH, YuXL, WangLM, QinXH, ChenZG. Three-dimensional flexible thermoelectric fabrics for smart wearables. Nat Commun, 2025, 162523.

[49]

ZhangYY, ZhangTY, HuangZ, YangJ. A new class of electronic devices based on flexible porous substrates. Adv Sci, 2022, 92105084.

[50]

SongJH, GuJT, DangGP, WanMC, BaiYK, BaiQ, JiaoK, NiuLN. DNA-collagen dressing for promoting scarless healing in early burn wound management. Adv Compos Hybrid Mater, 2025, 8212.

[51]

Li GZ, Jiang XF, Asfahan H, Jia SY, Shao SY, Li XQ. Humidity-controlled smart window with synchronous solar and thermal radiation regulation. Adv Sci.2025;e06980

[52]

TanSJ, GuoSN, WuY, ZhangTC, TangJM, JiGB. Achieving broadband microwave shielding, thermal management, and smart window in energy-efficient buildings. Adv Funct Mater, 2025, 352415921.

[53]

ReleS, SongYH, ApkarianRP, QuZ, ConticelloVP, ChaikofEL. D-periodic collagen-mimetic microfibers. J Am Chem Soc, 2007, 12914780.

[54]

ZouBH, ChenYY, LiuYH, XieRJ, DuQJ, ZhangT, ShenY, ZhengB, LiS, WuJS, ZhangWN, HuangW, HuangX, HuoFW. Repurposed leather with sensing capabilities for multifunctional electronic skin. Adv Sci, 2018, 61801283.

[55]

RiazT, ZeeshanR, ZarifF, IlyasK, MuhammadN, SafiSZ, RahimA, RizviSAA, RehmanIU. FTIR analysis of natural and synthetic collagen. Appl Spectrosc Rev, 2018, 53703.

[56]

MaZL, XiangXL, ShaoL, ZhangYL, GuJW. Multifunctional wearable silver nanowire decorated leather nanocomposites for joule heating, electromagnetic interference shielding and piezoresistive sensing. Angew Chem Int Edit, 2022, 61e202200705.

[57]

JiangYW, YangMB, WuGD, MaR, LiDQ, HeYF. Boosting the glycerol tandem oxidation to glyceric acid via the rate determination step alteration. Appl Catal B: Environ Energy, 2025, 379125668.

[58]

ChenQQ, LiangBT, YuanX, YuXY, LiCC, WeiL, YeJ, WuJJ, DaiZY, LuYB. Sustainable extraction and characterization of type I collagen from tuna skin waste utilizing biocompatible ionic liquid-based aqueous two-phase system. Food Hydrocoll, 2025, 168111524.

[59]

LuoF, LiuZ, ZhouP, WangSQ, HeLZ, WuY, DuLD, JiaoMJ, LiaoZW, ChenZQ. Extraction of collagen from bovine tannery solid waste preserving original conformation via radical initiation and hydrogen bond reformation. Green Chem, 2024, 269195.

[60]

AlbuMG, GhicaMV, LecaM, PopaL, BorlescuC, CremenescuE, GiurgincaM, TrandafirV. Doxycycline delivery from collagen matrices crosslinked with tannic acid. Mol Cryst Liq Cryst, 2010, 52397.

[61]

BaiZX, WangXC, ZhengMH, YueOY, HuangMC, ZouXL, CuiBQ, XieL, DongSY, ShangJJ, GongGD, BlockiAM, GuoJL, LiuXH. Mechanically robust and transparent organohydrogel-based e-skin nanoengineered from natural skin. Adv Funct Mater, 2023, 332212856.

[62]

LyuB, LiH, GaoDG, LiN, ZhengC. High output performance leather-based triboelectric nanogenerator by tuning charge trapping and transport. Nano Energy, 2024, 132110342.

[63]

ValenciaGA, LucianoCG, LourençoRV, BittanteAMQB, SobralPJ. Morphological and physical properties of nano-biocomposite films based on collagen loaded with laponite. Food Packag Shelf Life, 2019, 1924.

[64]

WangP, FengJY, BaiY, ChenX, LuoXM, ZhangP, WangXC. Zirconium ion ligand cross-linked carbon nanotubes and leather collagen fibers for flexible, stable, and highly efficient underwater sensors. Chem Eng J, 2024, 480148201.

[65]

WangXH, TianXJ, WangQL, ShenRX, MaCW, BaiL, WangWH. The combination of microwave and hot-air drying to prepare collagen fiber powder from cowhide. J Food Eng, 2024, 363111773.

[66]

KeshanidokhtS, KumarS, ThulstrupPW, ViaMA, ClausenMP, RisboJ. Thermo-responsive behavior of glycerol-plasticized oleogels stabilized by zein. Food Hydrocoll, 2023, 139108582.

[67]

YanH, WangJS, DuC, LiZ, YuanH, XuZ, TanYQ. Hydrogen bond-mediated strong plasticization for high-performance alginate plastics. Adv Mater, 2024, 362400648.

[68]

ShangQQ, LiuCG, HuY, JiaPY, HuLH, ZhouYH. Bio-inspired hydrophobic modification of cellulose nanocrystals with castor oil. Carbohyd Polym, 2018, 191168.

[69]

LiYM, NiYS, HeW, LiHR, ZhangWD, TanLJ, ZhaoJS, XuBC. Mussel-inspired highly adhesive carrageenan-based coatings with self-activating enhanced activity for meat preservation. Carbohyd Polym, 2025, 348122840.

[70]

LiuR, LiKJ, FangLY, LuoWR, WangSF, HuangCX. Edible freshness-keeping film prepared by Pouteria campechiana pericarp residue and applied to the preservation of duck breast meat. Food Packag Shelf Life, 2024, 42101268.

[71]

LuziF, DominiciF, ArmentanoI, FortunatiE, BurgosN, FioriS, JiménezA, KennyJM, TorreL. Combined effect of cellulose nanocrystals, carvacrol and oligomeric lactic acid in PLA_PHB polymeric films. Carbohyd Polym, 2019, 223115131.

[72]

VallésC, PapageorgiouDG, LinF, LiZ, SpencerBF, YoungRJ, KinlochIA. PMMA-grafted graphene nanoplatelets to reinforce the mechanical and thermal properties of PMMA composites. Carbon, 2020, 157750.

[73]

ZhaoXL, LiuYY, WengYX, LiYD, ZengJB. Sustainable epoxy vitrimers from epoxidized soybean oil and vanillin. ACS Sustain Chem Eng, 2020, 815020.

[74]

SchirmeisterCG, HeesT, LichtEH, MülhauptR. 3D printing of high density polyethylene by fused filament fabrication. Addit Manuf, 2019, 28152

[75]

WangLQ, BelliniM, MillerHA, VarcoeJR. A high conductivity ultrathin anion-exchange membrane with 500+ h alkali stability for use in alkaline membrane fuel cells that can achieve 2 W cm−2 at 80°C. J Mater Chem A, 2018, 615404.

[76]

MonfaredAR, TuccittoAV, OmranpourH, RahmanSS, ZaouiA, SalehiA, RezaeiS, RahmatiR, LotockiV, SeferosDS, ParkCB. Empowering PLA bioplastics: elevating applications horizon through groundbreaking eco-innovative fibrillation, chain extension, and crosslinking techniques. Chem Eng J, 2024, 496154181.

[77]

ChenJX, WangYK, YinZ, TamKC, WuDF. Morphology and mechanical properties of poly(β-hydroxybutyrate)/poly(ε-caprolactone) blends controlled with cellulosic particles. Carbohyd Polym, 2017, 174217.

[78]

ChenTR, MansfieldCD, JuL, BairdDG. The influence of mechanical recycling on the properties of thermotropic liquid crystalline polymer and long glass fiber reinforced polypropylene. Compos B Eng, 2020, 200108316.

[79]

JiangSQ, HanHY, AitmagambetovaM, RakhimovaA, LiL, BaiR, YangCJ, YeX, WangSY, XiJ, DingW. Oligosaccharide glycosylation of pigskin collagen: impact on molecular structure, physicochemical properties, and gel functionality. Food Hydrocoll, 2025, 164111176.

[80]

ZhuBW, DongXP, ZhouDY, GaoY, YangJF, LiDM, ZhaoXK, RenTT, YeWX, TanH, WuHT, YuCX. Physicochemical properties and radical scavenging capacities of pepsin-solubilized collagen from sea cucumber Stichopus japonicus. Food Hydrocoll, 2012, 28182.

[81]

GovindharajM, RoopavathUK, RathSN. Valorization of discarded Marine Eel fish skin for collagen extraction as a 3D printable blue biomaterial for tissue engineering. J Clean Prod, 2019, 230412.

[82]

MarascoP, KozluA, BergoAM, HavlíkJ, KlojdováI, Baigts-AllendeDK. Structural and functional qualities of gelatin derived from the skin of the common eland antelope (Taurotragus oryx). Food Hydrocoll, 2025, 167111397.

[83]

WangZG, SunCZ, LiFM, ChenLY. Fatigue resistance, re-usable and biodegradable sponge materials from plant protein with rapid water adsorption capacity for microplastics removal. Chem Eng J, 2021, 415129006.

[84]

LiuYW, WuY, ChenYG, ZhangPL, ZhengX. Capturer of emerging contaminants: potentials and perspectives of amyloid protein nanofibrils as the novel adsorbents. Chem Eng J, 2024, 493152819.

[85]

WangXL, TaoS, XingBS. Sorption and competition of aromatic compounds and humic acid on multiwalled carbon nanotubes. Environ Sci Technol, 2009, 436214.

[86]

BachmannSAL, CalveteT, FérisLA. Caffeine removal from aqueous media by adsorption: an overview of adsorbents evolution and the kinetic, equilibrium and thermodynamic studies. Sci Total Environ, 2021, 767144229.

[87]

SinghN, KhandelwalN, GanieZA, TiwariE, DarbhaGK. Eco-friendly magnetic biochar: an effective trap for nanoplastics of varying surface functionality and size in the aqueous environment. Chem Eng J, 2021, 418129405.

[88]

AslamAA, IrshadA, NazirMS, AtifM. A review on covalent organic frameworks as adsorbents for organic pollutants. J Clean Prod, 2023, 400136737.

[89]

PrajapatiA, VaidyaAN, KumarAR. Microplastic properties and their interaction with hydrophobic organic contaminants: a review. Environ Sci Pollut Res, 2022, 2949490.

[90]

SongJY, JhungSH. Adsorption of pharmaceuticals and personal care products over metal-organic frameworks functionalized with hydroxyl groups: quantitative analyses of H-bonding in adsorption. Chem Eng J, 2017, 322366.

[91]

WangQJ, ZhangY, ZahngYY, LiuZQ, WangJXX, ChenHJ. Effects of biofilm on metal adsorption behavior and microbial community of microplastics. J Hazard Mater, 2022, 424127340.

[92]

WuY, YeCH, LiuFT, GuXK, YuL, ShiXW, DuYM, DingMY, ChenCJ, DengHB. Highly efficient, recyclable microplastic adsorption enabled by chitin hydrogen bond network rearrangement. Adv Funct Mater, 2024, 342311075.

Funding

Natural Science Foundation of China(22278257)

Key Research and Development Projects of Shaanxi Province(2024SF-YBXM-586)

the Project of Innovation Capability Support Program in Shaanxi Province(2024ZC-KJXX-005)

RIGHTS & PERMISSIONS

Donghua University, Shanghai, China

AI Summary AI Mindmap
PDF

171

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/