A self-stiffening compliant intracortical microprobe

被引:0
|
作者
Sharafkhani, Naser [1 ]
Long, John M. [1 ]
Adams, Scott D. [1 ]
Kouzani, Abbas Z. [1 ]
机构
[1] Deakin Univ, Sch Engn, Geelong, Vic 3216, Australia
关键词
Intracortical microprobe; Insertion; Buckling; Self-stiffening; Finite element method; 3D printing; NEURAL PROBE; BRAIN-TISSUE;
D O I
10.1007/s10544-024-00700-7
中图分类号
R318 [生物医学工程];
学科分类号
0831 ;
摘要
Utilising a flexible intracortical microprobe to record/stimulate neurons minimises the incompatibility between the implanted microprobe and the brain, reducing tissue damage due to the brain micromotion. Applying bio-dissolvable coating materials temporarily makes a flexible microprobe stiff to tolerate the penetration force during insertion. However, the inability to adjust the dissolving time after the microprobe contact with the cerebrospinal fluid may lead to inaccuracy in the microprobe positioning. Furthermore, since the dissolving process is irreversible, any subsequent positioning error cannot be corrected by re-stiffening the microprobe. The purpose of this study is to propose an intracortical microprobe that incorporates two compressible structures to make the microprobe both adaptive to the brain during operation and stiff during insertion. Applying a compressive force by an inserter compresses the two compressible structures completely, resulting in increasing the equivalent elastic modulus. Thus, instant switching between stiff and soft modes can be accomplished as many times as necessary to ensure high-accuracy positioning while causing minimal tissue damage. The equivalent elastic modulus of the microprobe during operation is approximate to 23 kPa, which is approximate to 42% less than the existing counterpart, resulting in approximate to 46% less maximum strain generated on the surrounding tissue under brain longitudinal motion. The self-stiffening microprobe and surrounding neural tissue are simulated during insertion and operation to confirm the efficiency of the design. Two-photon polymerisation technology is utilised to 3D print the proposed microprobe, which is experimentally validated and inserted into a lamb's brain without buckling.
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收藏
页数:11
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