Fabrication of self-expandable NiTi thin film devices with micro-electrode array for bioelectric sensing, stimulation and ablation

被引:11
作者
Bechtold, Christoph [1 ]
de Miranda, Rodrigo Lima [1 ]
Chluba, Christoph [1 ,2 ]
Quandt, Eckhard [2 ]
机构
[1] Acquandas GmbH, Kaiserstr 2, D-24143 Kiel, Germany
[2] Univ Kiel, Inst Mat Sci, Fac Engn, Kaiserstr 2, D-24143 Kiel, Germany
关键词
Nitinol; Medical devices; Micro electrodes; Superelastic; Shape memory; Bioelectric sensing; Stimulation; BIOCOMPATIBILITY; ELECTRODE;
D O I
10.1007/s10544-016-0131-6
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Self-expandable medical devices provide mechanical functionality at a specific location of the human body and are viable for minimal invasive procedures. Besides radiopaque markers and drug-eluting coatings, next generation self-expandable devices can be equipped with additional functionality, such as conductive and flexible electrodes, which enables chronic recording of bioelectrical signals, stimulating or ablating tissue. This promises new therapeutic options in various medical fields, among them in particular neuromodulation (e.g. deep brain stimulation), BioMEMS, radio frequency ablation, mapping or denervation. However, the fabrication of such multi-functional devices is challenging. For this study we have realized a 35 mu m thick, superelastic NiTi thin film stent structure with six isolated electrodes on the outer circumference, each electrode connected to a contact pad at the end of the stent structure, using magnetron sputtering, UV lithography and wet chemical etching. Mechanical and electrical properties of the device during typical loading conditions, i.e. crimping, simulated pulsatile and electrochemical testing, were characterized and reveal promising results. For the fabrication of future multifunctional, minimal invasive medical devices, such as electroceuticals or other intelligent implants, NiTi thin film technology is therefore a versatile alternative to conventional fabrication routes.
引用
收藏
页数:7
相关论文
共 26 条
  • [11] First long term in vivo study on subdurally implanted Micro-ECoG electrodes, manufactured with a novel laser technology
    Henle, C.
    Raab, M.
    Cordeiro, J. G.
    Doostkam, S.
    Schulze-Bonhage, A.
    Stieglitz, T.
    Rickert, J.
    [J]. BIOMEDICAL MICRODEVICES, 2011, 13 (01) : 59 - 68
  • [12] A MEMS fabricated flexible electrode array for recording surface field potentials
    Hollenberg, Brian A.
    Richards, Cecilia D.
    Richards, Robert
    Bahr, David F.
    Rector, David M.
    [J]. JOURNAL OF NEUROSCIENCE METHODS, 2006, 153 (01) : 147 - 153
  • [13] Fatigue-Free, Electrically Reliable Copper Electrode with Nanohole Array
    Kim, Byoung-Joon
    Cho, Yigil
    Jung, Min-Suk
    Shin, Hae-A-Seul
    Moon, Myoung-Woon
    Han, Heung Nam
    Nam, Ki Tae
    Joo, Young-Chang
    Choi, In-Suk
    [J]. SMALL, 2012, 8 (21) : 3300 - 3306
  • [14] Li B., MED DEV MAT, VV, P111
  • [15] Oxley T. J., 2016, NAT BIOTECHNOL, V3428, P1
  • [16] A MEMS-based flexible multichannel ECoG-electrode array
    Rubehn, Birthe
    Bosman, Conrado
    Ostenveld, Robert
    Fries, Pascal
    Stieglitz, Thomas
    [J]. JOURNAL OF NEURAL ENGINEERING, 2009, 6 (03)
  • [17] Biocompatibility of Nitinol
    Ryhänen, J
    [J]. MINIMALLY INVASIVE THERAPY & ALLIED TECHNOLOGIES, 2000, 9 (02) : 99 - 105
  • [18] Scheuermann T., PCT/EP2015/052026, Patent No. 2015052026
  • [19] Schuettler M., 2007, P IEEE EMBS
  • [20] Comparison of the Fatigue Performance of Commercially Produced Nitinol Samples versus Sputter-Deposited Nitinol
    Siekmeyer, Gerd
    Schuessler, Andreas
    de Miranda, Rodrigo Lima
    Quandt, Eckhard
    [J]. JOURNAL OF MATERIALS ENGINEERING AND PERFORMANCE, 2014, 23 (07) : 2437 - 2445