半纤维素/木质素及其衍生物作为3D打印材料研究综述

赵钱孙1, 陈继飞1*, 吴桂峰1, 宋鹏辉1, 杜官本2

化工新型材料 ›› 2023, Vol. 51 ›› Issue (10) : 244 -249.

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化工新型材料 ›› 2023, Vol. 51 ›› Issue (10) : 244-249. DOI: 10.19817/j.cnki.issn1006-3536.2023.10.003
开发与应用

半纤维素/木质素及其衍生物作为3D打印材料研究综述

    赵钱孙1, 陈继飞1*, 吴桂峰1, 宋鹏辉1, 杜官本2
作者信息 +

A review of research on hemicellulose/lignin and its derivatives as 3D printing materials

  • Zhao Qiansun1, Chen Jifei1, Wu Guifeng1, Song Penghui1, Du Guanben2
Author information +
文章历史 +
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摘要

3D打印作为新型的制造技术,具有广阔的发展前景,其中成型材料是发展重点。木质纤维作为自然界中最常见的天然聚合物和植物资源的主要成分,具有多重优势,在生物基产品中具有巨大潜力。以半纤维素/木质素及其衍生物作为生物基原料用于3D打印,生产制造生物基3D打印产品,得到了高度关注。综述阐明基于半纤维素/木质素及其衍生物作为3D打印材料的最新进展综述,包括植物纤维基原料在3D打印中的作用和功能,同时论述了发展过程中存在的挑战和问题,并描述了其前景和机遇。

Abstract

3D printing,as a new manufacturing technology,has a broad future and development prospect,and its molding materials are the focus of development.As the most common natural polymer in nature and the main component of plant resources,lignin fibres have multiple advantages and great potential in bio-based products.The use of hemicellulose/lignin and its derivatives as bio-based raw materials for 3D printing to produce and manufacture bio-based 3D printed products has received high attention.This paper provided a review of recent advances based on hemicellulose/lignin and its derivatives as 3D printing materials,including the role and function of plant fibre-based raw materials in 3D printing.The challenges and problems in the development process of hemicellulose/lignin and its derivatives in 3D printing were also discussed,and the prospects and opportunities were described.

关键词

3D打印 / 半纤维素 / 木质素 / 衍生物

Key words

3D printing / hemicellulose / lignin / derivatives

引用本文

引用格式 ▾
半纤维素/木质素及其衍生物作为3D打印材料研究综述[J]. 化工新型材料, 2023, 51(10): 244-249 DOI:10.19817/j.cnki.issn1006-3536.2023.10.003

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参考文献

[1] 卢秉恒.增材制造技术——现状与未来[J].中国机械工程,2020,31(1):19-23.
[2] 任何东,杨景宇,李超林,等.3D打印技术及应用趋势[J].成都工业学院学报,2018,21(2):30-36.
[3] 李小丽,马剑雄,李萍,等.3D打印技术及应用趋势[J].自动化仪表,2014,35(1):1-5.
[4] 姜一帆,赵凤起,李辉,等.墨水直写增材制造技术及其在含能材料领域的研究进展[J].火炸药学报,2022,45(1):1-19.
[5] Wang Z,Xu J,Lu Y,et al.Preparation of 3D printable micro/nanocellulose-polylactic acid (MNC/PLA) composite wire rods with high MNC constitution[J].Industrial Crops and Products,2017,109:889-896.
[6] Truby R L,Lewis J A.Printing soft matter in three dimensions[J].Nature,2016,540(7633):371-378.
[7] Ligon S C,Liska R,Stampfl J,et al.Polymers for 3D printing and customized additive manufacturing[J].Chem Rev,2017,117(15):10212-10290.
[8] 王超,陈继飞,冯韬,等.3D打印技术发展及其耗材应用进展[J].中国铸造装备与技术,2021,56(6):38-44.
[9] Kalsoom U,Nesterenko P N,Paull B.Recent developments in 3D printable composite materials[J].RSC Advances,2016,6(65):60355-60371.
[10] Xu W,Wang X,Sandler N,et al.Three-dimensional printing of wood-derived biopolymers:a review focused on biomedical applications[J].ACS Sustain Chem Eng,2018,6(5):5663-5680.
[11] Hokkanen S,Bhatnagar A,Sillanpaa M.A review on modification methods to cellulose-based adsorbents to improve adsorption capacity[J].Water Research,2016,91(Mar.15):156-173.
[12] Wang S,Lu A,Zhang L.Recent advances in regenerated cellulose materials[J].Progress in Polymer Science,2016,53:169-206.
[13] Dai L,Cheng T,Duan C,et al.3D printing using plant-derived cellulose and its derivatives:a review[J].Carbohydr Polym,2019,203:71-86.
[14] Jessop Z M,Al-Sabah A,Gao N,et al.Printability of pulp derived crystal,fibril and blend nanocellulose-alginate bioinks for extrusion 3D bioprinting[J].Biofabrication,2019,11(4):045006.
[15] Wang J,Chiappone A,Roppolo I,et al.All-in-one cellulose nanocrystals for 3d printing of nanocomposite hydrogels[J].Angew Chem Int Ed Engl,2018,57(9):2353-2356.
[16] Zhou Y,Wan C,Yang Y,et al.Highly stretchable,elastic,and ionic conductive hydrogel for artificial soft electronics[J].Advanced Functional Materials,2019,29(1):1806220.1-1806220.8.
[17] Liu J,Sun L,Xu W,et al.Current advances and future perspectives of 3D printing natural-derived biopolymers[J].Carbohydr Polym,2019,207:297-316.
[18] Xu W,Molino B Z,Cheng F,et al.On low-concentration inks formulated by nanocellulose assisted with gelatin methacrylate (GelMA) for 3D printing toward wound healing application[J].ACS Appl Mater Interfaces,2019,11(9):8838-8848.
[19] Yang J,An X,Liu L,et al.Cellulose,hemicellulose,lignin,and their derivatives as multi-components of bio-based feedstocks for 3D printing[J].Carbohydr Polym,2020,250:116881.
[20] Xu W,Pranovich A,Uppstu P,et al.Novel biorenewable composite of wood polysaccharide and polylactic acid for three dimensional printing[J].Carbohydr Polym,2018,187:51-58.
[21] Markstedt K,Escalante A,Toriz G,et al.Biomimetic inks based on cellulose nanofibrils and cross-linkable xylans for 3D printing[J].ACS Appl Mater Interfaces,2017,9(46):40878-40886.
[22] Xu W,Zhang X,Yang P,et al.Surface engineered biomimetic inks based on uv cross-linkable wood biopolymers for 3D printing[J].ACS Appl Mater Interfaces,2019,11(13):12389-12400.
[23] Liu J,Chinga-Carrasco G,Cheng F,et al.Hemicellulose-reinforced nanocellulose hydrogels for wound healing application[J].Cellulose,2016,23(5):3129-3143.
[24] Kam D,Chasnitsky M,Nowogrodski C,et al.Direct CRYO writing of aerogels via 3D Printing of aligned cellulose nanocrystals inspired by the plant cell wall[J].Colloids and Interfaces,2019,3(2):46.
[25] Bahçegül E G,Bahçegül E,Özkan N.3D printing of hemicellulosic biopolymers extracted from lignocellulosic agricultural wastes[J].ACS Applied Polymer Materials,2020,2(7):2622-2632.
[26] Graichen F H,Grigsby W J,Hill S J,et al.Yes,we can make money out of lignin and other bio-based resources[J].Industrial Crops and Products,2017,106:74-85.
[27] Köhnke J,Gierlinger N,Prats-Mateu B,et al.Comparison of four technical lignins as a resource for electrically conductive carbon particles[J].BioResources,2019,14(1):1091-1109.
[28] Ebers L S,Arya A,Bowland C C,et al.3D printing of lignin:challenges,opportunities and roads onward[J].Biopolymers,2021,112(6):e23431.
[29] Tanase-Opedal M,Espinosa E,Rodríguez A,et al.Lignin:a biopolymer from forestry biomass for biocomposites and 3D printing[J].Materials,2019,12(18):3006.
[30] Yu Q,Bahi A,Ko F.Influence of poly(ethylene oxide)(PEO) percent and lignin type on the properties of lignin/PEO blend filament[J].Macromolecular Materials and Engineering,2015,300(10):1023-1032.
[31] Huang S,Shuyi S,Gan H,et al.Facile fabrication and characterization of highly stretchable lignin-based hydroxyethyl cellulose self-healing hydrogel[J].Carbohydr Polym,2019,223:115080.
[32] Äkräs L.3D bioprinting inks based on cellulose nanofibrils and colloidal lignin particles[R].Helsinki:Aalto University School of Chemical Engineering,2019.
[33] Oveissi F,Naficy S,Le T Y L,et al.Tough and processable hydrogels based on lignin and hydrophilic polyurethane[J].ACS Appl Bio Mater,2018,1(6):2073-2081.
[34] Nguyen N A,Bowland C C,Naskar A K.Mechanical,thermal,morphological,and rheological characteristics of high performance 3D-printing lignin-based composites for additive manufacturing applications[J].Data Brief,2018,19:936-950.
[35] Nguyen N A,Bowland C C,Naskar A K.A general method to improve 3D-printability and inter-layer adhesion in lignin-based composites[J].Applied Materials Today,2018,12:138-152.
[36] Vaidya A A,Collet C,Gaugler M,et al.Integrating softwood biorefinery lignin into polyhydroxybutyrate composites and application in 3D printing[J].Materials Today Communications,2019,19:286-296.
[37] Ajdary R,Kretzschmar N,Baniasadi H,et al.Selective laser sintering of lignin-based composites[J].ACS Sustainable Chemistry & Engineering,2021,9(7):2727-2735.
[38] Zhang S,Li M,Hao N,et al.Stereolithography 3D Printing of lignin-reinforced composites with enhanced mechanical properties[J].ACS Omega,2019,4(23):20197-20204.
[39] Nguyen N A,Barnes S H,Bowland C C,et al.A path for lignin valorization via additive manufacturing of high-performance sustainable composites with enhanced 3D printability[J].Science Advances,2018,4(12):4967.
[40] Mohan D,Bakir A N,Sajab M S,et al.Homogeneous distribution of lignin/graphene fillers with enhanced interlayer adhesion for 3D printing filament[J].Polymer Composites,2021,42(5):2408-2421.
[41] Hong S H,Park J H,Kim O Y,et al.Preparation of chemically modified lignin-reinforced PLA biocomposites and their 3D printing performance[J].Polymers,2021,13(4):667.
[42] Roman J,Neri W,Fierro V,et al.Lignin-graphene oxide inks for 3D printing of graphitic materials with tunable density[J].Nano Today,2020,33:100881.
[43] Jiang B,Yao Y,Liang Z,et al.Lignin-based direct ink printed structural scaffolds[J].Small,2020,16(31):e1907212.
[44] Domínguez-Robles J,Martin N K,Fong M L,et al.Antioxidant PLA composites containing lignin for 3D printing applications:a potential material for healthcare applications[J].Pharmaceutics,2019,11(4):165.
[45] Zhang X,Morits M,Jonkergouw C,et al.Three-dimensional printed cell culture model based on spherical colloidal lignin particles and cellulose nanofibril-alginate hydrogel[J].Biomacromolecules,2020,21(5):1875-1885.
[46] Ebers L S,Laborie M P.Direct ink writing of fully bio-based liquid crystalline lignin/hydroxypropyl cellulose aqueous inks:optimization of formulations and printing parameters[J].ACS Applied Bio Materials,2020,3(10):6897-6907.
[47] Sutton J T,Rajan K,Harper D P,et al.Lignin-containing photoactive resins for 3D printing by stereolithography[J].ACS Appl Mater Interfaces,2018,10(42):36456-36463.
[48] Zhang X,Keck S,Qi Y,et al.Study on modified dealkaline lignin as visible light macromolecular photoinitiator for 3D printing[J].ACS Sustainable Chemistry & Engineering,2020,8(29):10959-10970.
[49] Tanase-Opedal M,Espinosa E,Rodriguez A,et al.Lignin:a biopolymer from forestry biomass for biocomposites and 3D printing[J].Materials (Basel),2019,12(18):3006.

基金资助

国家自然科学基金(51865053);云南省教育厅科研基金项目(2022J0501)

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