Three-dimensional printing with sacrificial materials for soft matter manufacturing

被引:0
|
作者
Christopher S. O’Bryan
Tapomoy Bhattacharjee
Sean R. Niemi
Sidhika Balachandar
Nicholas Baldwin
S. Tori Ellison
Curtis R. Taylor
W. Gregory Sawyer
Thomas E. Angelini
机构
[1] University of Florida,Department of Mechanical and Aerospace Engineering
[2] University of Florida,undefined
来源
MRS Bulletin | 2017年 / 42卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Three-dimensional (3D) printing has expanded beyond the mere patterned deposition of melted solids, moving into areas requiring spatially structured soft matter—typically materials composed of polymers, colloids, surfactants, or living cells. The tunable and dynamically variable rheological properties of soft matter enable the high-resolution manufacture of soft structures. These rheological properties are leveraged in 3D printing techniques that employ sacrificial inks and sacrificial support materials, which go through reversible solid–fluid transitions under modest forces or other small perturbations. Thus, a sacrificial material can be used to shape a second material into a complex 3D structure, and then discarded. Here, we review the sacrificial materials and related methods used to print soft structures. We analyze data from the literature to establish manufacturing principles of soft matter printing, and we explore printing performance within the context of instabilities controlled by the rheology of soft matter materials.
引用
收藏
页码:571 / 577
页数:6
相关论文
共 50 条
  • [31] Printing soft matter in three dimensions
    Ryan L. Truby
    Jennifer A. Lewis
    Nature, 2016, 540 : 371 - 378
  • [32] Three-dimensional jamming and flows of soft glassy materials
    Ovarlez, G.
    Barral, Q.
    Coussot, P.
    NATURE MATERIALS, 2010, 9 (02) : 115 - 119
  • [33] Three-dimensional printing of mycelium hydrogels into living complex materials
    Gantenbein, Silvan
    Colucci, Emanuele
    Kaech, Julian
    Trachsel, Etienne
    Coulter, Fergal B.
    Ruehs, Patrick A.
    Masania, Kunal
    Studart, Andre R.
    NATURE MATERIALS, 2023, 22 (01) : 128 - +
  • [34] Three-dimensional printing of mycelium hydrogels into living complex materials
    Silvan Gantenbein
    Emanuele Colucci
    Julian Käch
    Etienne Trachsel
    Fergal B. Coulter
    Patrick A. Rühs
    Kunal Masania
    André R. Studart
    Nature Materials, 2023, 22 : 128 - 134
  • [35] Additive manufacturing and three-dimensional printing in obstetrics and gynecology: a comprehensive review
    Mert Yasli
    Sajjad Rahmani Dabbagh
    Savas Tasoglu
    Serdar Aydin
    Archives of Gynecology and Obstetrics, 2023, 308 : 1679 - 1690
  • [36] MANUFACTURING PARTS OPTIMIZATION IN THE THREE-DIMENSIONAL PRINTING PROCESS BY THE TAGUCHI METHOD
    Hsu, Tsung-Jung
    Lai, Wei-Hsiang
    JOURNAL OF THE CHINESE INSTITUTE OF ENGINEERS, 2010, 33 (01) : 121 - 130
  • [37] Three-dimensional triboelectric nanogenerator manufacturing using water transfer printing
    Cai, Shuangxing
    Han, Chengcheng
    Cao, Zhi
    Chen, Yongyang
    Cao, Jie
    Wang, Yuanyu
    Wu, Zhiyi
    CHEMICAL ENGINEERING JOURNAL, 2024, 493
  • [38] Three-Dimensional Printing Technologies in Oral Films Manufacturing-A Minireview
    Ozon, Emma Adriana
    Sarbu, Iulian
    Popovici, Violeta
    Mitu, Mirela Adriana
    Musuc, Adina Magdalena
    Karampelas, Oana
    Velescu, Bruno Stefan
    PROCESSES, 2023, 11 (09)
  • [39] Additive manufacturing and three-dimensional printing in obstetrics and gynecology: a comprehensive review
    Yasli, Mert
    Dabbagh, Sajjad Rahmani
    Tasoglu, Savas
    Aydin, Serdar
    ARCHIVES OF GYNECOLOGY AND OBSTETRICS, 2023, 308 (06) : 1679 - 1690
  • [40] Voxel-based virtual manufacturing simulation for three-dimensional printing
    Ueng, Shyh-Kuang
    Chen, Lu-Guan
    Jen, Szu-Yao
    ADVANCES IN MECHANICAL ENGINEERING, 2018, 10 (06):