Active vacuum brazing of CNT films to metal substrates for superior electron field emission performance

被引:12
作者
Longtin, Remi [1 ]
Sanchez-Valencia, Juan Ramon [1 ,2 ]
Shorubalko, Ivan [1 ]
Furrer, Roman [1 ]
Hack, Erwin [1 ]
Elsener, Hansrudolf [1 ]
Groening, Oliver [1 ]
Greenwood, Paul [3 ]
Rupesinghe, Nalin [3 ]
Teo, Kenneth [3 ]
Leinenbach, Christian [1 ]
Groening, Pierangelo [1 ]
机构
[1] Empa, Swiss Fed Labs Mat Sci & Technol, CH-8600 Dubendorf, Switzerland
[2] CSIC US, Inst Ciencia Mat Sevilla, Nanotechnol Surfaces Lab, E-41092 Seville, Spain
[3] AIXTRON Ltd, Cambridge CB24 4FQ, England
基金
瑞士国家科学基金会;
关键词
carbon nanotubes; brazing; field emission; CARBON NANOTUBES; RESIDUAL-STRESSES; SHEAR-STRENGTH; DIAMOND; EMITTERS; CU; MICROSTRUCTURE; NANOCOMPOSITE; PARAMETERS; CATHODES;
D O I
10.1088/1468-6996/16/1/015005
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
The joining of macroscopic films of vertically aligned multiwalled carbon nanotubes (CNTs) to titanium substrates is demonstrated by active vacuum brazing at 820 degrees C with a Ag-Cu-Ti alloy and at 880 degrees C with a Cu-Sn-Ti-Zr alloy. The brazing methodology was elaborated in order to enable the production of highly electrically and thermally conductive CNT/metal substrate contacts. The interfacial electrical resistances of the joints were measured to be as low as 0.35 Omega. The improved interfacial transport properties in the brazed films lead to superior electron fieldemission properties when compared to the as-grown films. An emission current of 150 mu A was drawn from the brazed nanotubes at an applied electric field of 0.6 V mu m(-1). The improvement in electron field-emission is mainly attributed to the reduction of the contact resistance between the nanotubes and the substrate. The joints have high re-melting temperatures up to the solidus temperatures of the alloys; far greater than what is achievable with standard solders, thus expanding the application potential of CNT films to high-current and high-power applications where substantial frictional or resistive heating is expected.
引用
收藏
页数:11
相关论文
共 50 条
[21]   Electron translocation and field emission in printed CNT film by high-temperature sintering and post-treatment [J].
Zhang, Xiu-Xia ;
Zhu, Chang-Chun .
MICROELECTRONICS JOURNAL, 2009, 40 (08) :1166-1169
[22]   Investigation on field electron emission from carbon nanotubes on nanocrystalline diamond films [J].
Liao, KJ ;
Wang, WL ;
Cai, CZ ;
Lu, JW ;
Hu, CG .
Science and Technology of Nanomaterials - ICMAT 2003, 2005, 23 :35-38
[23]   Effective carbon nanotubes/graphene hybrid films for electron field emission application [J].
Hong, Xuda ;
Shi, Wei ;
Zheng, Hairong ;
Liang, Dong .
VACUUM, 2019, 169
[24]   A field emission performance test device for continuous adjustment of the electrode spacing in the vacuum system [J].
Wu, Linling ;
Pei, Xiaoqiang ;
Cheng, Yongjun ;
Sun, Wenjun ;
Wang, Yongjun ;
Dong, Meng ;
Xi, Zhenhua ;
Sun, Jian .
MEASUREMENT SCIENCE AND TECHNOLOGY, 2019, 30 (01)
[25]   Field electron emission induced glow discharge in a nanodiamond vacuum diode [J].
Baturin, Stanislav S. ;
Nikhar, Tanvi ;
Baryshev, Sergey, V .
JOURNAL OF PHYSICS D-APPLIED PHYSICS, 2019, 52 (32)
[26]   Effect of metal nanoparticles decoration on electron field emission property of graphene sheets [J].
Baby, Tessy Theres ;
Ramaprabhu, Sundara .
NANOSCALE, 2011, 3 (10) :4170-4173
[27]   Fabrication of a Ni-matrix CNT flexible field emission electron source for X-ray generation by micromachining [J].
Sun, Bin ;
Wang, Yan ;
Ding, Guifu .
OPTICAL MATERIALS EXPRESS, 2016, 6 (07) :2304-2312
[28]   Highly enhanced and stable field emission performance of CNT - Dielectric (Si3N4) hybrids [J].
Saini, Shubham ;
Kuriakose, Albin ;
Ghosh, Santanu ;
Srivastava, Pankaj .
APPLIED SURFACE SCIENCE, 2024, 652
[29]   CNT lateral field-emission electron source for an orbitron micropump [J].
Grzebyk, Tomasz ;
Gorecka-Drzazga, Anna ;
Dziuban, Jan A. .
2011 24TH INTERNATIONAL VACUUM NANOELECTRONICS CONFERENCE (IVNC), 2011, :189-190
[30]   The patterned electron field emission of printed carbon nanotube films by image transfer technology [J].
Feng, Tao ;
Chen, Yiwei ;
Hui, Ding ;
Sun, Zhuo .
VACUUM, 2010, 85 (04) :527-530