Choi Gwang Jin, Gwon Tae Mok, Kim Doo Hee, Park Junbeom, Kim Seung Min, Oh Seung Ha, Lim Yoonseob, Jun Sang Beom, Kim Sung June
Department of Electrical and Computer Engineering, Seoul National University, Seoul, 08826, South Korea.
Inter-University Semiconductor Research Center, Seoul National University, Seoul, 08826, South Korea.
Biomed Microdevices. 2019 Mar 7;21(1):27. doi: 10.1007/s10544-019-0384-y.
It is known that the insertion of the intracochlear electrode is critical procedure because the damage around cochlear structures can deteriorate hearing restoration. To reduce the trauma during the electrode insertion surgery, we developed a thin and flexible intracochlear electrode array constructed with carbon nanotube (CNT) bundles.
Each CNT bundle was used for an individual electrode channel after coated with parylene C for insulation. By encapsulating eight CNT bundles with silicone elastomer, an 8-channel intracochlear electrode array was fabricated. The mechanical and electrochemical characteristics were assessed to evaluate the flexibility and feasibility of the electrode as a stimulation electrode. The functionality of the electrode was confirmed by electrically evoked auditory brainstem responses (eABR) recorded from a rat.
The proposed electrode has a thickness of 135 μm at the apex and 395 μm at the base. It was demonstrated that the CNT bundle-based electrodes require 6-fold the lower insertion force than metal wire-based electrodes. The electrode impedance and the cathodic charge storage capacitance (CSCc) were 2.70 kΩ ∠-20.4° at 1 kHz and - 708 mC/cm, respectively. The eABR waves III and V were observed when stimulation current is greater than 50 μA.
A thin and flexible CNT bundle-based intracochlear electrode array was successfully developed. The feasibility of the proposed electrode was shown in terms of mechanical and electrochemical characteristics. A proposed CNT bundle-based intracochlear electrode may reduce the risk of trauma during electrode insertion surgery.
已知人工耳蜗电极植入是关键步骤,因为耳蜗结构周围的损伤会使听力恢复恶化。为减少电极植入手术期间的创伤,我们开发了一种由碳纳米管束构建的薄且灵活的人工耳蜗电极阵列。
每个碳纳米管束在涂覆聚对二甲苯C以进行绝缘后用于单个电极通道。通过用硅橡胶弹性体封装八个碳纳米管束,制造了一个8通道人工耳蜗电极阵列。评估了其机械和电化学特性,以评估该电极作为刺激电极的灵活性和可行性。通过记录大鼠的电诱发听性脑干反应(eABR)来确认电极的功能。
所提出的电极在顶端的厚度为135μm,在基部的厚度为395μm。结果表明,基于碳纳米管束的电极所需的插入力比基于金属丝的电极低6倍。电极阻抗和阴极电荷存储电容(CSCc)在1kHz时分别为2.70kΩ∠-20.4°和-708mC/cm。当刺激电流大于50μA时观察到eABR波III和V。
成功开发了一种基于碳纳米管束的薄且灵活的人工耳蜗电极阵列。从机械和电化学特性方面展示了所提出电极的可行性。所提出的基于碳纳米管束的人工耳蜗电极可能会降低电极植入手术期间的创伤风险。