• International Journal of Extreme Manufacturing
  • Vol. 5, Issue 3, 35002 (2023)
1, 1, 2, and 1
Author Affiliations
  • 1Flexible Electronics Research Center, State Key Laboratory of Digital Manufacturing Equipment and Technology, School of Mechanical Science and Engineering, Huazhong University of Science and Technology, Wuhan, Hubei 430074, People’s Republic of China
  • 2Guangdong Sygole Intelligent Technology Co., Lt, Dongguan, Guangdong, People’s Republic of China
  • show less
    DOI: 10.1088/2631-7990/acd090 Cite this Article
    [in Chinese], [in Chinese], [in Chinese], [in Chinese]. A systematic printability study of direct ink writing towards high-resolution rapid manufacturing[J]. International Journal of Extreme Manufacturing, 2023, 5(3): 35002 Copy Citation Text show less
    References

    [1] JiYY, LuanCC,Yao XH,FuJZandHeY2021Recent progress in 3D printing of smart structures: classification, challenges, and trends Adv. Intell. Syst. 3 2000271

    [2] Lewis J A 2002 Direct-write assembly of ceramics from colloidal inks Curr. Opin. Solid State Mater. Sci. 6 245–50

    [3] Saadi M A S R, Maguire A, Pottackal N T, Thakur S H, Ikram M M, Hart A J, Ajayan P M and Rahman M M 2022 Direct ink writing: a 3D printing technology for diverse materials Adv. Mater. 34 2108855

    [4] Lewis J A 2006 Direct ink writing of 3D functional materials Adv. Funct. Mater. 16 2193–204

    [5] Ahn B Y, Duoss E B, Motala M J, Guo X Y, Park S-I, Xiong Y J, Yoon J, Nuzzo R G, Rogers J A and Lewis J A 2009 Omnidirectional printing of flexible, stretchable, and spanning silver microelectrodes Science 323 1590–3

    [6] Zhu C, Han T Y J, Duoss E B, Golobic A M, Kuntz J D, Spadaccini C M and Worsley M A 2015 Highly compressible 3D periodic graphene aerogel microlattices Nat. Commun. 6 6962

    [7] Vatani M, Engeberg E D and Choi J W 2015 Conformal direct-print of piezoresistive polymer/nanocomposites for compliant multi-layer tactile sensors Addit. Manuf. 7 73–82

    [8] Shao Y et al 2022 Room-temperature high-precision printing of flexible wireless electronics based on MXene inks Nat. Commun. 13 3223

    [9] Erb R M, Sander J S, Grisch R and Studart A R 2013 Self-shaping composites with programmable bioinspired microstructures Nat. Commun. 4 1712

    [10] Hu W K, Wang Z J, Xiao Y, Zhang S M and Wang J L 2019 Advances in crosslinking strategies of biomedical hydrogels Biomater. Sci. 7 843–55

    [11] Liu X Y, Yuk H, Lin S T, Parada G A, Tang T-C, Tham E, de la Fuente-nunez C, Lu T K and Zhao X H 2018 3D printing of living responsive materials and devices Adv. Mater. 30 1704821

    [12] WangZJ,WangZJ,ZhengY, HeQG,WangYandCaiSQ 2020 Three-dimensional printing of functionally graded liquid crystal elastomer Sci. Adv. 6 eabc0034

    [13] Kotikian A, McMahan C, Davidson E C, Muhammad J M, Weeks R D, Daraio C and Lewis J A 2019 Untethered soft robotic matter with passive control of shape morphing and propulsion Sci. Robot. 4 eaax7044

    [14] Ge Q, Qi H J and Dunn M L 2013 Active materials by four-dimension printing Appl. Phys. Lett. 103 131901

    [15] Ratna D and Karger-Kocsis J 2008 Recent advances in shape memory polymers and composites: a review J. Mater. Sci. 43 254–69

    [16] Hou Z Z, Lu H, Li Y, Yang L X and Gao Y 2021 Direct ink writing of materials for electronics-related applications: a mini review Front. Mater. 8 647229

    [17] Wei P R, Leng H M, Chen Q Y, Advincula R C and Pentzer E B 2019 Reprocessable 3D-printed conductive elastomeric composite foams for strain and gas sensing ACS Appl. Polym. Mater. 1 885–92

    [18] Huang X et al 2022 Flexible mechanical metamaterials enabled electronic skin for real-time detection of unstable grasping in robotic manipulation Adv. Funct. Mater. 32 2109109

    [19] Skylar-Scott M A, Uzel S G M, Nam L L, Ahrens J H, Truby R L, Damaraju S and Lewis J A 2019 Biomanufacturing of organ-specific tissues with high cellular density and embedded vascular channels Sci. Adv. 5 eaaw2459

    [20] Jakus A E, Secor E B, Rutz A L, Jordan S W, Hersam M C and Shah R N 2015 Three-dimensional printing of high-content graphene scaffolds for electronic and biomedical applications ACS Nano 9 4636–48

    [21] Schaffner M, Faber J A, Pianegonda L, Rühs P A, Coulter F and Studart A R 2018 3D printing of robotic soft actuators with programmable bioinspired architectures Nat. Commun. 9 878

    [22] Skylar-Scott M A, Mueller J, Visser C W and Lewis J A 2019 Voxelated soft matter via multimaterial multinozzle 3D printing Nature 575 330–5

    [23] Wan X, Luo L, Liu Y J and Leng J S 2020 Direct ink writing based 4D printing of materials and their applications Adv. Sci. 7 2001000

    [24] Lewis J A, Smay J E, Stuecker J and Cesarano J III 2006 Direct ink writing of three-dimensional ceramic structures J. Am. Ceram. Soc. 89 3599–609

    [25] Neumann T V and Dickey M D 2020 Liquid metal direct write and 3D printing: a review Adv. Mater. Technol. 5 2000070

    [26] Forzatti P, Ballardini D and Sighicelli L 1998 Preparation and characterization of extruded monolithic ceramic catalysts Catal. Today 41 87–94

    [27] WangJF, LiuYY, Fan ZM,WangW, WangBandGuoZH 2019 Ink-based 3D printing technologies for graphene-based materials: a review Adv. Compos. Hybrid Mater. 2 1–33

    [28] Ji H H, Zhao J, Chen J, Shimai S Z, Zhang J, Liu Y, Liu D Z and Wang S W 2022 A novel experimental approach to quantitatively evaluate the printability of inks in 3D printing using two criteria Addit. Manuf. 55 102846

    [29] Nesaei S, Rock M, Wang Y, Kessler M R and Gozen A 2017 Additive manufacturing with conductive, viscoelastic polymer composites: direct-ink-writing of electrolytic and anodic poly (ethylene oxide) composites J. Manuf. Sci. Eng. 139 111004

    [30] Hausmann M K, Rühs P A, Siqueira G, L.uger J, Libanori R, Zimmermann T and Studart A R 2018 Dynamics of cellulose nanocrystal alignment during 3D printing ACS Nano 12 6926–37

    [31] Bruneaux J, Therriault D and Heuzey M-C 2008 Micro-extrusion of organic inks for direct-write assembly J. Micromech. Microeng. 18 115020

    [32] Yuk H and Zhao X H 2018 A new 3D printing strategy by harnessing deformation, instability, and fracture of viscoelastic inks Adv. Mater. 30 1704028

    [33] Fang H, Wang L, Fu Z Z, Xu L, Guo W, Huang J, Wang Z L and Wu H 2023 Anatomically designed triboelectric wristbands with adaptive accelerated learning for human–machine interfaces Adv. Sci. 10 2205960

    [34] Yang G G et al 2022 Adhesive and hydrophobic bilayer hydrogel enabled on-skin biosensors for high-fidelity classification of human emotion Adv. Funct. Mater. 32 2200457

    [35] Herschel W H and Bulkley R 1926 Konsistenzmessungen von gummi-benzoll.sungen Kolloid-Z. 39 291–300

    [36] Deng P, Zhang J, Liu F H, Liu K J, Liu H and Zhang L 2013 Shear-induced flow behavior of three polymers in different size dies J. Macromol. Sci. B 52 651–61

    [37] Wilms P, Wieringa J, Blijdenstein T, Van Malssen K, Hinrichs J and Kohlus R 2022 On the difficulty of determining the apparent wall slip of highly concentrated suspensions in pressure driven flows: the accuracy of indirect methods and best practice J. Non-Newton. Fluid Mech. 299 104694

    [38] Estelle K T and Gozen B A 2022 Complex ink flow mechanisms in micro-direct-ink-writing and their implications on flow rate control Addit. Manuf. 59 103183

    [39] Del-Mazo-Barbara L and Ginebra M-P 2021 Rheological characterisation of ceramic inks for 3D direct ink writing: a review J. Eur. Ceram. Soc. 41 18–33

    [40] Tubío C R, Antelo J, Guitián F and Gil A 2018 3D printed composites of copper-aluminum oxides 3D Print. Addit. Manuf. 5 46–52

    [41] Ozbolat V, Dey M, Ayan B, Povilianskas A, Demirel M C and Ozbolat I T 2018 3D printing of PDMS improves its mechanical and cell adhesion properties ACS Biomater. Sci. Eng. 4 682–93

    [42] Wehner M, Truby R L, Fitzgerald D J, Mosadegh B, Whitesides G M, Lewis J A and Wood R J 2016 An integrated design and fabrication strategy for entirely soft, autonomous robots Nature 536 451–5

    [43] Nachbaur L, Mutin J C, Nonat A and Choplin L 2001 Dynamic mode rheology of cement and tricalcium silicate pastes from mixing to setting Cem. Concr. Res. 31 183–92

    [44] White F M 2009 Fluid mechanics Viscous Flow in Ducts ed F M White (New York: E-Publishing Inc.) pp 347–59

    [45] Jiang Z, Ouyang T, Yao X D and Fei Y Q 2016 Die swell behavior of liquid crystalline mesophase pitch J. Mater. Sci. 51 7361–9

    [in Chinese], [in Chinese], [in Chinese], [in Chinese]. A systematic printability study of direct ink writing towards high-resolution rapid manufacturing[J]. International Journal of Extreme Manufacturing, 2023, 5(3): 35002
    Download Citation