Biofluid-Activated Biofuel Cells, Batteries, and Supercapacitors: A Comprehensive Review

被引:51
作者
Garland, Nate T. [1 ,2 ]
Kaveti, Rajaram [1 ,2 ]
Bandodkar, Amay J. [1 ,2 ]
机构
[1] North Carolina State Univ, Dept Elect & Comp Engn, Raleigh, NC 27606 USA
[2] North Carolina State Univ, Ctr Adv Selfpowered Syst Integrated Sensors & Tech, Raleigh, NC 27606 USA
关键词
biofuel cells; batteries; supercapacitors; implantable medical devices; energy devices; GOLD NANOPARTICLES; CARBON NANOTUBE; FUEL-CELL; GLUCOSE-OXIDASE; O-2; REDUCTION; POWER SOURCE; HUMAN SWEAT; PORE-SIZE; IN-VIVO; ON-SKIN;
D O I
10.1002/adma.202303197
中图分类号
O6 [化学];
学科分类号
0703 ;
摘要
Recent developments in wearable and implanted devices have resulted in numerous, unprecedented capabilities that generate increasingly detailed information about a user's health or provide targeted therapy. However, options for powering such systems remain limited to conventional batteries which are large and have toxic components and as such are not suitable for close integration with the human body. This work provides an in-depth overview of biofluid-activated electrochemical energy devices, an emerging class of energy sources judiciously designed for biomedical applications. These unconventional energy devices are composed of biocompatible materials that harness the inherent chemistries of various biofluids to produce useable electrical energy. This work covers examples of such biofluid-activated energy devices in the form of biofuel cells, batteries, and supercapacitors. Advances in materials, design engineering, and biotechnology that form the basis for high-performance, biofluid-activated energy devices are discussed. Innovations in hybrid manufacturing and heterogeneous integration of device components to maximize power output are also included. Finally, key challenges and future scopes of this nascent field are provided. This work provides a comprehensive assessment of the new, emerging field of biofluid-activated energy devices with an emphasis on materials innovation, device design engineering, and systems integration. Sections cover fundamentals and the latest examples of biofluid-activated biofuel cells, batteries, and supercapacitors. In-depth discussions on grand challenges and future prospects are also presented.image
引用
收藏
页数:25
相关论文
共 208 条
[1]   Mammalian Respiratory Complex I Through the Lens of Cryo-EM [J].
Agip, Ahmed-Noor A. ;
Blaza, James N. ;
Fedor, Justin G. ;
Hirst, Judy .
ANNUAL REVIEW OF BIOPHYSICS, VOL 48, 2019, 48 :165-184
[2]   Wearable patch delivery system for artificial pancreas health diagnostic-therapeutic application: A review [J].
Ahmad, Nur Farrahain Nadia ;
Ghazali, Nik Nazri Nik ;
Wong, Yew Hoong .
BIOSENSORS & BIOELECTRONICS, 2021, 189
[3]   Progress on implantable biofuel cell: Nano-carbon functionalization for enzyme immobilization enhancement [J].
Babadi, Arman Amani ;
Bagheri, Samira ;
Hamid, Sharifah Bee Abdul .
BIOSENSORS & BIOELECTRONICS, 2016, 79 :850-860
[4]   Sweat-activated biocompatible batteries for epidermal electronic and microfluidic systems [J].
Bandodkar, A. J. ;
Lee, S. P. ;
Huang, I ;
Li, W. ;
Wang, S. ;
Su, C-J ;
Jeang, W. J. ;
Hang, T. ;
Mehta, S. ;
Nyberg, N. ;
Gutruf, P. ;
Choi, J. ;
Koo, J. ;
Reeder, J. T. ;
Tseng, R. ;
Ghaffari, R. ;
Rogers, J. A. .
NATURE ELECTRONICS, 2020, 3 (09) :554-+
[5]   Wearable Sensors for Biochemical Sweat Analysis [J].
Bandodkar, Amay J. ;
Jeang, William J. ;
Ghaffari, Roozbeh ;
Rogers, John A. .
ANNUAL REVIEW OF ANALYTICAL CHEMISTRY, VOL 12, 2019, 12 :1-22
[6]   Battery-free, skin-interfaced microfluidic/electronic systems for simultaneous electrochemical, colorimetric, and volumetric analysis of sweat [J].
Bandodkar, Amay J. ;
Gutruf, Philipp ;
Choi, Jungil ;
Lee, KunHyuck ;
Sekine, Yurina ;
Reeder, Jonathan T. ;
Jeang, William J. ;
Aranyosi, Alexander J. ;
Lee, Stephen P. ;
Model, Jeffrey B. ;
Ghaffari, Roozbeh ;
Su, Chun-Ju ;
Leshock, John P. ;
Ray, Tyler ;
Verrillo, Anthony ;
Thomas, Kyle ;
Krishnamurthi, Vaishnavi ;
Han, Seungyong ;
Kim, Jeonghyun ;
Krishnan, Siddharth ;
Hang, Tao ;
Rogers, John A. .
SCIENCE ADVANCES, 2019, 5 (01)
[7]  
Bandodkar AJ, 2017, ENERG ENVIRON SCI, V10, P1581, DOI [10.1039/C7EE00865A, 10.1039/c7ee00865a]
[8]   Effect of pore size on the performance of immobilised enzymes [J].
Bayne, Lauren ;
Ulijn, Rein V. ;
Halling, Peter J. .
CHEMICAL SOCIETY REVIEWS, 2013, 42 (23) :9000-9010
[9]   Advances in Materials and Structures for Ingestible Electromechanical Medical Devices [J].
Bettinger, Christopher J. .
ANGEWANDTE CHEMIE-INTERNATIONAL EDITION, 2018, 57 (52) :16946-16958
[10]   DESIGN AND INVITRO STUDIES OF A NEEDLE-TYPE GLUCOSE SENSOR FOR SUBCUTANEOUS MONITORING [J].
BINDRA, DS ;
ZHANG, YN ;
WILSON, GS ;
STERNBERG, R ;
THEVENOT, DR ;
MOATTI, D ;
REACH, G .
ANALYTICAL CHEMISTRY, 1991, 63 (17) :1692-1696