A review of 3D-printed sensors

被引:112
作者
Ni, Yujie [1 ]
Ji, Ru [1 ]
Long, Kaiwen [1 ]
Bu, Ting [1 ]
Chen, Kejian [1 ]
Zhuang, Songlin [1 ]
机构
[1] Univ Shanghai Sci & Technol, Sch Opt Elect & Comp Engn, Shanghai Key Lab Modern Opt Syst,Inst Opt Elect I, Engn Res Ctr Opt Instrument & Syst,Minist Educ, Shanghai 200093, Peoples R China
基金
中国国家自然科学基金;
关键词
Biosensors; chemical sensors; functional material; physical sensors; 3D printing technology; 3D PRINTING TECHNOLOGY; LOW-COST; HIGH-THROUGHPUT; STRAIN SENSORS; GAS SENSOR; MICROFLUIDIC DEVICE; CHEMICAL-SYNTHESIS; MODIFIED GRAPHENE; FLUIDIC DEVICES; QUANTUM DOTS;
D O I
10.1080/05704928.2017.1287082
中图分类号
TH7 [仪器、仪表];
学科分类号
0804 ; 080401 ; 081102 ;
摘要
Nowadays, sensors play an important role in human life. Among the many manufacturing methods used in the fabrication of sensors, three-dimensional (3D) printing has gradually shown its advantages, particularly with commercial products. Physical sensors, biosensors, and chemical sensors can all be fabricated via 3D printing technology, through either directly printing sensing components, printing molds for casting sensors, or printing platforms to be integrated with commercial sensors. In this article, the varieties of features and applications of 3D printing technologies used in the fabrication of sensors are reviewed. Several types of 3D printing technologies are compared for better understanding of the tools. With the development of new or hybrid manufacturing methods and materials used in the 3D printing technology, this technology will show its great advantages and potential in the fabrication of highly sensitive nanosensors or compound sensors with 3D intricate structures.
引用
收藏
页码:623 / 652
页数:30
相关论文
共 146 条
  • [1] 3D-printed photo-spectroelectrochemical devices for in situ and in operando X-ray absorption spectroscopy investigation
    Achilli, Elisabetta
    Minguzzi, Alessandro
    Visibile, Alberto
    Locatelli, Cristina
    Vertova, Alberto
    Naldoni, Alberto
    Rondinini, Sandra
    Auricchio, Ferdinando
    Marconi, Stefania
    Fracchia, Martina
    Ghigna, Paolo
    [J]. JOURNAL OF SYNCHROTRON RADIATION, 2016, 23 : 622 - 628
  • [2] 3D-printed spherical dipole antenna integrated on small RF node
    Adams, J. J.
    Slimmer, S. C.
    Lewis, J. A.
    Bernhard, J. T.
    [J]. ELECTRONICS LETTERS, 2015, 51 (09) : 661 - U85
  • [3] Alapan Yunus, 2015, J Nanotechnol Eng Med, V6, DOI 10.1115/1.4031231
  • [4] Helical 3D-Printed Metal Electrodes as Custom-Shaped 3D Platform for Electrochemical Devices
    Ambrosi, Adriano
    Moo, James Guo Sheng
    Pumera, Martin
    [J]. ADVANCED FUNCTIONAL MATERIALS, 2016, 26 (05) : 698 - 703
  • [5] A 3D Printed Fluidic Device that Enables Integrated Features
    Anderson, Kari B.
    Lockwood, Sarah Y.
    Martin, R. Scott
    Spence, Dana M.
    [J]. ANALYTICAL CHEMISTRY, 2013, 85 (12) : 5622 - 5626
  • [6] Gas Sensors Based on One Dimensional Nanostructured Metal-Oxides: A Review
    Arafat, M. M.
    Dinan, B.
    Akbar, Sheikh A.
    Haseeb, A. S. M. A.
    [J]. SENSORS, 2012, 12 (06): : 7207 - 7258
  • [7] 3D-printed microfluidic automation
    Au, Anthony K.
    Bhattacharjee, Nirveek
    Horowitz, Lisa F.
    Chang, Tim C.
    Folch, Albert
    [J]. LAB ON A CHIP, 2015, 15 (08) : 1934 - 1941
  • [8] Mail-order microfluidics: evaluation of stereolithography for the production of microfluidic devices
    Au, Anthony K.
    Lee, Wonjae
    Folch, Albert
    [J]. LAB ON A CHIP, 2014, 14 (07) : 1294 - 1301
  • [9] Fully Inkjet-Printed Flexible Temperature Sensors Based on Carbon and PEDOT:PSS
    Bali, C.
    Brandlmaier, A.
    Ganster, A.
    Raab, O.
    Zapf, J.
    Huebler, A.
    [J]. MATERIALS TODAY-PROCEEDINGS, 2016, 3 (03) : 739 - 745
  • [10] 3D-printed miniature gas cell for photoacoustic spectroscopy of trace gases
    Bauer, Ralf
    Stewart, George
    Johnstone, Walter
    Boyd, Euan
    Lengden, Michael
    [J]. OPTICS LETTERS, 2014, 39 (16) : 4796 - 4799