Liang Ye, Zhang Chi, Lin Rubing, Lin Junqing, Chen Jishizhan
Centre for Regenerative Medicine and Health, Hong Kong Institute of Science & Innovation, Chinese Academy of Sciences, Hong Kong Special Administrative Region of China.
Hainan Medical University, No.3 Xueyuan Road, Longhua District, Haikou City, 571199, Hainan Province, China.
Mater Today Bio. 2025 Jul 4;33:102055. doi: 10.1016/j.mtbio.2025.102055. eCollection 2025 Aug.
Next-generation medical devices include implantable medical devices (IMDs) and wearables, exemplified by devices such as pacemakers for heart regulation and deep brain stimulators for neurological disorders, which have significantly advanced healthcare by offering critical treatments and improving patient outcomes. However, conventional battery technologies for these devices remain prevalent, and their constraints on longevity, size, and necessity for periodic replacement or recharging pose significant challenges, especially in implantable scenarios, presenting concerns regarding patient safety, healthcare costs, and device reliability. To address these issues, this review investigates alternative energy sources that tap into the intrinsic energy of the human body and delves into a range of promising energy harvesting techniques, including electromagnetic energy harvesting, ultrasound wireless power transfer (US-WPT), energy generation from tissue motion and heartbeats, utilization of body thermal gradients through thermoelectric generators (TEGs), and glucose oxidation within biofuel cells. Each technique is evaluated for its potential to provide a sustainable power source for IMDs and wearables, highlighting distinctive advantages such as dual functionality, enhanced penetration capabilities, access to inexhaustible energy reservoirs from bodily movements, and the biochemical conversion of glucose into electrical energy. Despite their promise, this review also discusses the remaining challenges, future directions, and exciting opportunities associated with these cutting-edge energy harvesting methods, emphasizing the need for multidisciplinary research to overcome current hurdles and unlock new possibilities for self-sustained medical and wearable devices. This review uniquely evaluates energy harvesting techniques through the lens of 'functionally cooperating systems'-emphasizing how synergistic integration of smart materials, adaptive algorithms, and physiological interfaces can overcome fundamental trade-offs between biocompatibility, power density, and clinical viability.
下一代医疗设备包括植入式医疗设备(IMD)和可穿戴设备,例如用于心脏调节的起搏器和用于神经疾病的深部脑刺激器等设备就是例证,这些设备通过提供关键治疗和改善患者预后,极大地推动了医疗保健的发展。然而,这些设备的传统电池技术仍然普遍存在,其在寿命、尺寸以及定期更换或充电必要性方面的限制带来了重大挑战,尤其是在植入式场景中,引发了对患者安全、医疗成本和设备可靠性的担忧。为了解决这些问题,本综述研究了利用人体内在能量的替代能源,并深入探讨了一系列有前景的能量收集技术,包括电磁能量收集、超声无线功率传输(US-WPT)、组织运动和心跳产生能量、通过热电发电机(TEG)利用身体热梯度以及生物燃料电池内的葡萄糖氧化。对每种技术为IMD和可穿戴设备提供可持续电源的潜力进行了评估,突出了其独特优势,如双重功能、增强的穿透能力、从身体运动中获取无尽能量储备以及将葡萄糖生化转化为电能。尽管这些技术前景广阔,但本综述也讨论了与这些前沿能量收集方法相关的剩余挑战、未来方向和令人兴奋的机遇,强调需要多学科研究来克服当前障碍,并为自持式医疗和可穿戴设备开启新的可能性。本综述通过“功能协作系统”的视角对能量收集技术进行了独特评估——强调智能材料、自适应算法和生理接口的协同整合如何能够克服生物相容性、功率密度和临床可行性之间的基本权衡。