• International Journal of Extreme Manufacturing
  • Vol. 5, Issue 2, 25502 (2023)
Zhaolong Wang1,*, Qiu Yin2, Ziheng Zhan1, Wenhao Li1..., Mingzhu Xie1, Huigao Duan1, Ping Cheng2, Ce Zhang3, Yongping Chen4,5 and and Zhichao Dong6|Show fewer author(s)
Author Affiliations
  • 1Interdisciplinary Research Center of Low-carbon Technology and Equipment, College of Mechanical and Vehicle Engineering, Hunan University, Changsha 410082, People’s Republic of China
  • 2MOE Key Laboratory for Power Machinery and Engineering, School of Mechanical Engineering, Shanghai Jiao Tong University, Shanghai 200240, People’s Republic of China
  • 3Qian Xuesen Laboratory of Space Technology, China Academy of Space Technology (CAST), Beijing 100094, People’s Republic of China
  • 4Jiangsu Key Laboratory of Micro and Nano Heat Fluid Flow Technology and Energy Application, School of Environmental Science and Engineering, Suzhou University of Science and Technology, Suzhou, Jiangsu 215009, People’s Republic of China
  • 5Key Laboratory of Energy Thermal Conversion and Control of Ministry of Education, School of Energy and Environment, Southeast University, Nanjing 210096, People’s Republic of China
  • 6Chinese Academy of Sciences Key Laboratory of Bio-inspired Materials and Interface Sciences, Technical Institute of Physics and Chemistry, Chinese Academy of Sciences, 100190 Beijing, People’s Republic of China
  • show less
    DOI: 10.1088/2631-7990/acbcff Cite this Article
    Zhaolong Wang, Qiu Yin, Ziheng Zhan, Wenhao Li, Mingzhu Xie, Huigao Duan, Ping Cheng, Ce Zhang, Yongping Chen, and Zhichao Dong. Bionic microchannels for step lifting transpiration[J]. International Journal of Extreme Manufacturing, 2023, 5(2): 25502 Copy Citation Text show less
    References

    [1] Dixon H H and Joly J 1895 XII. On the ascent of sap Phil. Trans. R. Soc. B 186 563–76

    [2] XuJK,XiuSY, LianZX,Yu HDandCaoJJ2022 Bioinspired materials for droplet manipulation: principles, methods and applications Droplet 1 11–37

    [3] FengSL,ZhuPG,ZhengHX,ZhanHY, ChenC,LiJQ, Wang L Q, Yao X, Liu YHandWangZ K 2021 Three-dimensional capillary ratchet-induced liquid directional steering Science 373 1344–8

    [4] Yong J L, Yang Q, Huo J L, Hou X and Chen F 2022 Underwater gas self-transportation along femtosecond laser-written open superhydrophobic surface microchannels (<100 μm) for bubble/gas manipulation Int. J. Extrem. Manuf. 4 015002

    [5] Wheeler T D and Stroock A D 2008 The transpiration of water at negative pressures in a synthetic tree Nature 455 208–12

    [6] Koch G W, Sillett S C, Jennings G M and Davis S D 2004 The limits to tree height Nature 428 851–4

    [7] Beebe D J, Mensing G A and Walker G M 2002 Physics and applications of microfluidics in biology Annu. Rev. Biomed. Eng. 4 261–86

    [8] Sackmann E K, Fulton A L and Beebe D J 2014 The present and future role of microfluidics in biomedical research Nature 507 181–9

    [9] Stoock A D, Dertinger S K W, Ajdari A, Mezi′c I, Stone H A and Whitesides G M 2002 Chaotic mixer for microchannels Science 295 647–51

    [10] Wang Z L, Zhan Z H, Chen L, Duan G H, Cheng P, Kong H, Chen Y P and Duan H G 2022 3D-printed bionic solar evaporator Sol. RRL 6 2101063

    [11] Yager P, Edwards T, Fu E, Helton K, Nelson K, Tam M R and Weigl B H 2006 Microfluidic diagnostic technologies for global public health Nature 442 412–8

    [12] Chen L, Duan G H, Zhang C, Cheng P and Wang Z L 2022 3D printed hydrogel for soft thermo-responsive smart window Int. J. Extrem. Manuf. 4 025302

    [13] WangZL,LiYY, GongS,LiWH,DuanHG,ChengP, Chen Y P and Dong Z C 2022 Three-dimensional open water microchannel transpiration mimetics ACS Appl. Mater. Interfaces 14 30435–42

    [14] FanDL et al 2022 Self-shrinking soft demoulding for complex high-aspect-ratio microchannels Nat. Commun. 13 5083

    [15] Zheng B, Tice J D and Ismagilov R F 2004 Formation of arrayed droplets by soft lithography and two-phase fluid flow, and application in protein crystallization Adv. Mater. 16 1365–8

    [16] Mair D A, Geiger E, Pisano A P, Fréchet J M and Svec F 2006 Injection molded microfluidic chips featuring integrated interconnects Lab Chip 6 1346–54

    [17] Yuan R, Lee J, Su H W, Levy E, Khudiyev T, Voldman J and Fink Y 2018 Microfluidics in structured multimaterial fibers Proc. Natl Acad. Sci. USA 115 e10830–8

    [18] Parekh D P, Ladd C, Panich L, Moussa K and Dickey M D 2016 3D printing of liquid metals as fugitive inks for fabrication of 3D microfluidic channels Lab Chip 16 1812–20

    [19] Kim S M and Mudawar I 2010 Analytical heat diffusion models for different micro-channel heat sink cross-sectional geometries Int. J. Heat Mass Transfer 53 4002–16

    [20] Chen H W, Zhang P F, Zhang L W, Liu H L, Jiang Y, Zhang D Y, Han Z W and Jiang L 2016 Continuous directional water transport on the peristome surface of nepenthes alata Nature 532 85–89

    [21] Li C X, Dai H Y, Gao C, Wang T, Dong Z C and Jiang L 2019 Bioinspired inner microstructured tube controlled capillary rise Proc. Natl Acad. Sci. USA 116 12704–9

    [22] Ge Q, Li Z Q, Wang Z L, Kowsari K, Zhang W, He X N, Zhou J L and Fang N X 2020 Projection micro stereolithography based 3D printing and its applications Int. J. Extrem. Manuf. 2 022004

    [23] Zhu J Z, Zhang Q, Yang T Q, Liu Y and Liu R 2020 3D printing of multi-scalable structures via high penetration near-infrared photopolymerization Nat. Commun. 11 3462

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

    [25] Huang Y A et al 2021 Programmable robotized ‘transfer-and-jet’ printing for large, 3D curved electronics on complex surfaces Int. J. Extrem. Manuf. 3 045101

    [26] He Y, Xiao X, Wu Y and Fu J Z 2015 A facile and low-cost micro fabrication material: flash foam Sci. Rep. 5 13522

    [27] ZhangWQ,Ye HT, FengXB,ZhouWZ,CaoK,LiMY, Fan S F and Lu Y 2022 Tailoring mechanical properties of PμSL 3D-printed structures via size effect Int. J. Extrem. Manuf. 4 045201

    [28] Bose S, Vahabzadeh S and Bandyopadhyay A 2013 Bone tissue engineering using 3D printing Mater. Today 16 496–504

    [29] Xing J F, Zheng M L and Duan X M 2015 Two-photon polymerization microfabrication of hydrogels: an advanced 3D printing technology for tissue engineering and drug delivery Chem. Soc. Rev. 44 5031–9

    [30] Wang Z L, Yang P Y, Qi G G, Zhang Z M and Cheng P 2020 An experimental study of a nearly perfect absorber made from a natural hyperbolic material for harvesting solar energy J. Appl. Phys. 127 233102

    [31] Wang Z L, Liu Z, Duan G H, Fang L Y and Duan H G 2022 Ultrahigh broadband absorption in metamaterials with electric and magnetic polaritons enabled by multiple materials Int. J. Heat Mass Transfer 185 122355

    [32] ZhaoJK,WeiDN,WangJJ,YangKM,WangZL,ChenZJ, Zhang S G, Zhang C and Yang X J 2022 Inorganic crosslinked supramolecular binder with fast self-healing for high performance silicon based anodes in lithium-ion batteries J. Colloid Interface Sci. 625 373–82

    [33] ZhaoJK,BaoK,XieMZ,WeiDN,YangKM,ZhangXB, Zhang C, Wang Z L and Yang X J 2022 Two-dimensional ultrathin networked CoP derived from Co(OH)2 as efficient electrocatalyst for hydrogen evolution Adv. Compos. Hybrid Mater. 5 2421–8

    [34] ZhanZH,ChenL,DuanHG,ChenYQ,HeMandWangZL 2022 3D printed ultra-fast photothermal responsive shape memory hydrogel for microrobots Int. J. Extrem. Manuf. 4 015302

    [35] LiBS et al 2022 Viral infection and transmission in a large, well-traced outbreak caused by the SARS-CoV-2 delta variant Nat. Commun. 13 460

    [36] Chen L, Wang Z L, Zhan Z H, Xie M Z, Duan G H, Cheng P, Chen Y Q and Duan H G 2021 3D printed super-anti-freezing self-adhesive human-machine interface Mater. Today Phys. 19 100404

    [37] WangZL,LiWH,ChenL,ZhanZHandDuanHG20223D printable silicone rubber for long-lasting and weather-resistant wearable devices ACS Appl. Polym. Mater. 4 2384–92

    [38] Wei T S, Ahn B Y, Grotto J and Lewis J A 2018 3D printing of customized Li-ion batteries with thick electrodes Adv. Mater. 30 1703027

    [39] 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

    [40] Yin Q, Guo Q, Wang Z L, Chen Y Q, Duan H G and Cheng P 2021 3D-printed bioinspired cassie–baxter wettability for controllable microdroplet manipulation ACS Appl. Mater. Interfaces 13 1979–87

    [41] Chen H W, Ran T, Gan Y, Zhou J J, Zhang Y, Zhang L W, Zhang D Y and Jiang L 2018 Ultrafast water harvesting and transport in hierarchical microchannels Nat. Mater. 17 935–42

    [42] LiuXJ,GuHC,WangM,DuX,GaoBB,ElbazA,SunLD, Liao J L, Xiao P F and Gu Z Z 2018 3D printing of bioinspired liquid superrepellent structures Adv. Mater. 30 1800103

    [43] Xie M Z, Duan H G, Cheng P, Chen Y P, Dong Z C and Wang Z L 2022 Underwater unidirectional cellular fluidics ACS Appl. Mater. Interfaces 14 9891–8

    [44] Wang L, Wang R X, Wang J and Wong T S 2020 Compact nanoscale textures reduce contact time of bouncing droplets Sci. Adv. 6 eabb2307

    [45] Gundersen H, Leinaas H P and Thaulow C 2014 Surface structure and wetting characteristics of Collembola cuticles PLoS One 9 e86783

    [46] OhJ,DanaCE,HongS,RománJK,JoKD,HongJW, Nguyen J, Cropek D M, Alleyne M and Miljkovic N 2017 Exploring the role of habitat on the wettability of cicada wings ACS Appl. Mater. Interfaces 9 27173–84

    [47] Hu H M, Watson J A, Cribb B W and Watson G S 2011 Fouling of nanostructured insect cuticle: adhesion of natural and artificial contaminants Biofouling 27 1125–37

    [48] Wagner T, Neinhuis C and Barthlott W 1996 Wettability and contaminability of insect wings as a function of their surface sculptures Acta Zool 77 213–25

    [49] Dudukovic N A, Fong E J, Gemeda H B, DeOtte J R, Cerón M R, Moran B D, Davis J T, Baker S E and Duoss E B 2021 Cellular fluidics Nature 595 58–65

    [50] JongWR,Kuo TH,HoSW, ChiuHHandPengSH2007 Flows in rectangular microchannels driven by capillary force and gravity Int. Commun. Heat Mass Transfer 34 186–96

    Zhaolong Wang, Qiu Yin, Ziheng Zhan, Wenhao Li, Mingzhu Xie, Huigao Duan, Ping Cheng, Ce Zhang, Yongping Chen, and Zhichao Dong. Bionic microchannels for step lifting transpiration[J]. International Journal of Extreme Manufacturing, 2023, 5(2): 25502
    Download Citation