Nanomaterials-based enzymatic biofuel cells for wearable and implantable bioelectronics

Jingyao Wang , Jiwei Ma , Hongfei Cheng

Front. Energy ›› 2025, Vol. 19 ›› Issue (3) : 283 -299.

PDF (8126KB)
Front. Energy ›› 2025, Vol. 19 ›› Issue (3) : 283 -299. DOI: 10.1007/s11708-025-0992-6
MINI REVIEW

Nanomaterials-based enzymatic biofuel cells for wearable and implantable bioelectronics

Author information +
History +
PDF (8126KB)

Abstract

Enzymatic biofuel cells (EBFCs), which generate electricity through electrochemical reactions between metabolites and O2/air, are considered a promising alternative power source for wearable and implantable bioelectronics. However, the main challenges facing EBFCs are the poor stability of enzymes and the low electron transfer efficiency between enzymes and electrodes. To enhance the efficiency of EBFCs, researchers have been focusing on the development of novel functional nanomaterials. This mini-review first introduces the working principles and types of EBFCs, highlighting the key roles of nanomaterials, such as enzyme immobilization and stabilization, promotion of electron transfer and catalytic activity. It then summarizes the recent advancements in their application in wearable and implantable devices. Finally, it explores future research direction and the potential of high-performance EBFCs for practical applications.

Graphical abstract

Keywords

enzymatic biofuel cells / functional nanomaterials / self-powered bioelectronics / wearable electronics

Cite this article

Download citation ▾
Jingyao Wang, Jiwei Ma, Hongfei Cheng. Nanomaterials-based enzymatic biofuel cells for wearable and implantable bioelectronics. Front. Energy, 2025, 19(3): 283-299 DOI:10.1007/s11708-025-0992-6

登录浏览全文

4963

注册一个新账户 忘记密码

References

[1]

Huang X, Wang L, Wang H. . Materials strategies and device architectures of emerging power supply devices for implantable bioelectronics. Small, 2020, 16(15): 1902827

[2]

Xiao X, Xia H, Wu R. . Tackling the challenges of enzymatic (bio)fuel cells. Chemical Reviews, 2019, 119(16): 9509–9558

[3]

Gamella M, Koushanpour A, Katz E. Biofuel cells—Activation of micro- and macro-electronic devices. Bioelectrochemistry, 2018, 119: 33–42

[4]

Cao L, Chen J, Pang J. . Research progress in enzyme biofuel cells modified using nanomaterials and their implementation as self-powered sensors. Molecules, 2024, 29(1): 257

[5]

Gross A J, Holzinger M, Cosnier S. Buckypaper bioelectrodes: Emerging materials for implantable and wearable biofuel cells. Energy & Environmental Science, 2018, 11(7): 1670–1687

[6]

Cai J, Shen F, Zhao J. . Enzymatic biofuel cell: A potential power source for self-sustained smart textiles. iScience, 2024, 27(2): 108998

[7]

Khan H, Tanveer M, Park C W. . Producing micro-power with microfluidic enzymatic biofuel cells: A comprehensive review. International Journal of Precision Engineering and Manufacturing-Green Technology, 2023, 10(2): 587–609

[8]

Sun M, Gu Y, Pei X. . A flexible and wearable epidermal ethanol biofuel cell for on-body and real-time bioenergy harvesting from human sweat. Nano Energy, 2021, 86: 106061

[9]

Kizling M, Dzwonek M, Nowak A. . Multi-substrate biofuel cell utilizing glucose, fructose and sucrose as the anode fuels. Nanomaterials, 2020, 10(8): 1534

[10]

Bollella P, Boeva Z, Latonen R M. . Highly sensitive and stable fructose self-powered biosensor based on a self-charging biosupercapacitor. Biosensors & Bioelectronics, 2021, 176: 112909

[11]

Huang X, Zhang L, Zhang Z. . Wearable biofuel cells based on the classification of enzyme for high power outputs and lifetimes. Biosensors & Bioelectronics, 2019, 124–125: 40–52

[12]

Mano N, de Poulpiquet A. O2 reduction in enzymatic biofuel cells. Chemical Reviews, 2018, 118(5): 2392–2468

[13]

Jeerapan I, Sempionatto J R, Wang J. On-body bioelectronics: wearable biofuel cells for bioenergy harvesting and self-powered biosensing. Advanced Functional Materials, 2020, 30(29): 1906243

[14]

Wu H, Zhang Y, Kjøniksen A L. . Wearable biofuel cells: Advances from fabrication to application. Advanced Functional Materials, 2021, 31(48): 2103976

[15]

Emir G, Dilgin Y, Sahin S. . A self-powered enzymatic glucose sensor utilizing bimetallic nanoparticle composites modified pencil graphite electrodes as cathode. Applied Biochemistry and Biotechnology, 2024,

[16]

Li Z, Kang Z, Wu B. . A MXene-based slurry bioanode with potential application in implantable enzymatic biofuel cells. Journal of Power Sources, 2021, 506: 230206

[17]

Gentil S, Che Mansor S M, Jamet H. . Oriented immobilization of [NiFeSe] hydrogenases on covalently and noncovalently functionalized carbon nanotubes for H2/air enzymatic fuel cells. ACS Catalysis, 2018, 8(5): 3957–3964

[18]

Su F, Wu Y, Yang H. Improving the performance of glucose oxidase biofuel cell by methyl red and chitosan composite electrodes. Biosensors & Bioelectronics: X, 2024, 21: 100534

[19]

Babadi A A, Wan-Mohtar W A A Q I, Chang J S. . High-performance enzymatic biofuel cell based on three-dimensional graphene. International Journal of Hydrogen Energy, 2019, 44(57): 30367–30374

[20]

Lee J, Hyun K, Park J M. . Maximizing the enzyme immobilization of enzymatic glucose biofuel cells through hierarchically structured reduced graphene oxide. International Journal of Energy Research, 2021, 45(15): 1–11

[21]

Kabir M H, Marquez E, Djokoto G. . Energy harvesting by mesoporous reduced graphene oxide enhanced the mediator-free glucose-powered enzymatic biofuel cell for biomedical applications. ACS Applied Materials & Interfaces, 2022, 14(21): 24229–24244

[22]

Ye J, Lu J, Wen D. Engineering carbon nanomaterials toward high-efficiency bioelectrocatalysis for enzymatic biofuel cells: A review. Materials Chemistry Frontiers, 2023, 7(22): 5806–5825

[23]

Niiyama A, Murata K, Shigemori Y. . High-performance enzymatic biofuel cell based on flexible carbon cloth modified with MgO-templated porous carbon. Journal of Power Sources, 2019, 427: 49–55

[24]

Shitanda I, Takamatsu K, Niiyama A. . High-power lactate/O2 enzymatic biofuel cell based on carbon cloth electrodes modified with MgO-templated carbon. Journal of Power Sources, 2019, 436: 226844

[25]

Mazurenko I, Clément R, Byrne-Kodjabachian D. . Pore size effect of MgO-templated carbon on enzymatic H2 oxidation by the hyperthermophilic hydrogenase from Aquifex aeolicus. Journal of Electroanalytical Chemistry, 2018, 812: 221–226

[26]

Haque S, Duteanu N, Nasar A. . Polythiophene-titanium oxide (PTH-TiO2) nanocomposite: As an electron transfer enhancer for biofuel cell anode construction. Journal of Power Sources, 2022, 520: 230867

[27]

Xiao X, Siepenkoetter T, Conghaile P O. . Nanoporous gold-based biofuel cells on contact lenses. ACS Applied Materials & Interfaces, 2018, 10(8): 7107–7116

[28]

Chung M, Nguyen T L, Tran T Q N. . Ultrarapid sonochemical synthesis of enzyme-incorporated copper nanoflowers and their application to mediatorless glucose biofuel cell. Applied Surface Science, 2018, 429: 203–209

[29]

Vo T N, Tran T D, Nguyen H K. . In situ growth of hybrid nanoflowers on activated carbon fibers as electrodes for mediatorless enzymatic biofuel cells. Materials Letters, 2020, 281: 128662

[30]

Sakthivel M, Ramaraj S, Chen S M. . Transition-metal-doped molybdenum diselenides with defects and abundant active sites for efficient performances of enzymatic biofuel cell and supercapacitor applications. ACS Applied Materials & Interfaces, 2019, 11(20): 18483–18493

[31]

Shakeel N, Ahamed M I. . Hydrothermally synthesized defective NiMoSe2 nanoplates decorated on the surface of functionalized SWCNTs doped polypyrrole scaffold for enzymatic biofuel cell applications. International Journal of Hydrogen Energy, 2021, 46(4): 3240–3250

[32]

Inamuddin H A. Ternary graphene@polyaniline-TiO2 composite for glucose biofuel cell anode application. International Journal of Hydrogen Energy, 2019, 44(39): 22173–22180

[33]

Inamuddin S, Shakeel N, Imran Ahamed M. . Green synthesis of ZnO nanoparticles decorated on polyindole functionalized-MCNTs and used as anode material for enzymatic biofuel cell applications. Scientific Reports, 2020, 10(1): 5052

[34]

Babadi A A, Fakhlaei R, Rahmati S. . A high-power hybrid carbon nanotube/three-dimensional reduced graphene oxide glucose/O2 enzymatic biofuel cell. Electrochimica Acta, 2024, 506: 145054

[35]

Yimamumaimaiti T, Lu X, Zhang J R. . Efficient blood-toleration enzymatic biofuel cell via in-situ protection of an enzyme catalyst. ACS Applied Materials & Interfaces, 2020, 12(37): 41429–41436

[36]

Li X, Feng Q, Lu K. . Encapsulating enzyme into metal-organic framework during in-situ growth on cellulose acetate nanofibers as self-powered glucose biosensor. Biosensors & Bioelectronics, 2021, 171: 112690

[37]

Li X, Li D, Zhang Y. . Encapsulation of enzyme by metal-organic framework for single-enzymatic biofuel cell-based self-powered biosensor. Nano Energy, 2020, 68: 104308

[38]

Cang Y, Yuan Y, Zhang K. . Encapsulation of glucose oxidase on zeolitic imidazolate framework-67 collaborates with carbon nanotubes to enhance the electrochemical performance of the enzymatic electrode. Energy & Fuels, 2024, 38(8): 7302–7310

[39]

Yan Y, Guo L, Geng H. . Hierarchical porous metal-organic framework as biocatalytic microreactor for enzymatic biofuel cell-based self-powered biosensing of microRNA integrated with cascade signal amplification. Small, 2023, 19(35): 2301654

[40]

Ortiz-Medina J, Wang Z, Cruz-Silva R. . Defect engineering and surface functionalization of nanocarbons for metal-free catalysis. Advanced Materials, 2019, 31(13): 1805717

[41]

ul Haque S, Nasar A, Duteanu N. . Carbon based-nanomaterials used in biofuel cells—A review. Fuel, 2023, 331: 125634

[42]

Tang J, Yan X, Engelbrekt C. . Development of graphene-based enzymatic biofuel cells: A mini-review. Bioelectrochemistry, 2020, 134: 107537

[43]

Tang J, Werchmeister R M L, Preda L. . Three-dimensional sulfite oxidase bioanodes based on graphene functionalized carbon paper for sulfite/O2 biofuel cells. ACS Catalysis, 2019, 9(7): 6543–6554

[44]

Hasan M Q, Kuis R, Narayanan J S. . Fabrication of highly effective hybrid biofuel cell based on integral colloidal platinum and bilirubin oxidase on gold support. Scientific Reports, 2018, 8(1): 16351

[45]

Navaee A, Salimi A. FAD-based glucose dehydrogenase immobilized on thionine/AuNPs frameworks grafted on amino-CNTs: Development of high power glucose biofuel cell and biosensor. Journal of Electroanalytical Chemistry, 2018, 815: 105–113

[46]

Sun Y, Qin T, Liu X. . A high-performance hybrid biofuel cell with a honeycomb-like Ti3C2Tx /MWCNT/AuNP bioanode and a ZnCo2 @NCNT cathode for self-powered biosensing. Small, 2023, 19(10): e2206257

[47]

Kwon C H, Ko Y, Shin D. . High-power hybrid biofuel cells using layer-by-layer assembled glucose oxidase-coated metallic cotton fibers. Nature Communications, 2018, 9(1): 4479

[48]

Kwon C H, Ko Y, Shin D. . Highly conductive electrocatalytic gold nanoparticle-assembled carbon fiber electrode for high-performance glucose-based biofuel cells. Journal of Materials Chemistry. A, Materials for Energy and Sustainability, 2019, 7(22): 13495–13505

[49]

Zhang J, Huang X, Zhang L. . Layer-by-layer assembly for immobilizing enzymes in enzymatic biofuel cells. Sustainable Energy & Fuels, 2020, 4(1): 68–79

[50]

Kang M, Nam D, Ahn J. . A mediator-free multi-ply biofuel cell using an interfacial assembly between hydrophilic enzymes and hydrophobic conductive oxide nanoparticles with pointed apexes. Advanced Materials, 2023, 35(51): 2304986

[51]

Karim A, Yang H. Mini-review: Recent technologies of electrode and system in the enzymatic biofuel cell (EBFC). Applied Sciences, 2021, 11: 5197

[52]

Sakai K, Xia H, Kitazumi Y. . Assembly of direct-electron-transfer-type bioelectrodes with high performance. Electrochimica Acta, 2018, 271: 305–311

[53]

Olloqui-Sariego J L, Calvente J J, Andreu R. Immobilizing redox enzymes at mesoporous and nanostructured electrodes. Current Opinion in Electrochemistry, 2021, 26: 100658

[54]

Yu S, Myung N V. Recent advances in the direct electron transfer-enabled enzymatic fuel cells. Frontiers in Chemistry, 2020, 8: 620153

[55]

Dai Q, Yang L, Wang Y. . Surface charge-controlled electron transfer and catalytic behavior of immobilized cytochrome P450 BM3 inside dendritic mesoporous silica nanoparticles. Analytical and Bioanalytical Chemistry, 2020, 412(19): 4703–4712

[56]

Elouarzaki K, Cheng D, Fisher A C. . Coupling orientation and mediation strategies for efficient electron transfer in hybrid biofuel cells. Nature Energy, 2018, 3(7): 574–581

[57]

Li G, Li Z, Xiao X. . An ultrahigh electron-donating quaternary-N-doped reduced graphene oxide@carbon nanotube framework: A covalently coupled catalyst support for enzymatic bioelectrodes. Journal of Materials Chemistry. A, Materials for Energy and Sustainability, 2019, 7(18): 11077–11085

[58]

Lavanya J, Subbiah A, Neogi S. . Direct electron transfer of hemoglobin at nitrogen incorporated reduced graphene oxide obtained by radio frequency ammonia plasma treatment. Sensors and Actuators. B, Chemical, 2018, 255: 536–543

[59]

Wang L L, Shao H H, Wang W J. . Nitrogen-doped hollow carbon nanospheres for high-energy-density biofuel cells and self-powered sensing of microRNA-21 and microRNA-141. Nano Energy, 2018, 44: 95–102

[60]

Guan S, Wang J, Yang Y. . Highly stretchable and flexible electrospinning-based biofuel cell for implantable electronic. Advanced Functional Materials, 2023, 33(33): 2303134

[61]

Wang Z, Li Y, Shi Z. . Implementation of pi-pi interaction in AuNPs@GDY to boost the bioelectrocatalysis in enzymatic biofuel cells. Bioelectrochemistry, 2024, 158: 108712

[62]

Xiao Y, Patolsky F, Katz E. . “Plugging into enzymes”: nanowiring of redox enzymes by a gold nanoparticle. Science, 2003, 299(5614): 1877–1881

[63]

Trifonov A, Stemmer A, Tel-Vered R. Enzymatic self-wiring in nanopores and its application in direct electron transfer biofuel cells. Nanoscale Advances, 2019, 1(1): 347–356

[64]

Mazurenko I, Hitaishi V P, Lojou E. Recent advances in surface chemistry of electrodes to promote direct enzymatic bioelectrocatalysis. Current Opinion in Electrochemistry, 2020, 19: 113–121

[65]

Wang K, Hong Q, Zhu C. . Metal-ligand dual-site single-atom nanozyme mimicking urate oxidase with high substrates specificity. Nature Communications, 2024, 15(1): 5705

[66]

Ru X, Chen H, Zhang Z. . Metal-organic framework-erythrocytic hybrid surfaces with enhanced oxygen reduction performance for enzymatic biofuel cells—An updated strategy. Journal of Power Sources, 2022, 535: 231411

[67]

Yu Y, Nassar J, Xu C. . Biofuel-powered soft electronic skin with multiplexed and wireless sensing for human-machine interfaces. Science Robotics, 2020, 5(41): eaaz7946

[68]

Gong S, Du S, Kong J. . Skin-like stretchable fuel cell based on gold-nanowire-impregnated porous polymer scaffolds. Small, 2020, 16(39): 2003269

[69]

Chu T F, Lin F Y, Kuznetsova I. . A novel neutral non-enzymatic glucose biofuel cell based on a Pt/Au nano-alloy anode. Journal of Power Sources, 2021, 486: 229374

[70]

Han H H, Jung S M, Kim S K. . Bimetallic electrocatalyst of hyaluronate-Au@Pt for durable oxygen reduction in biofuel cells. ACS Applied Energy Materials, 2022, 5(10): 12475–12484

[71]

Ji J, Woo J, Chung Y. . Dual catalytic functions of biomimetic, atomically dispersed iron-nitrogen doped carbon catalysts for efficient enzymatic biofuel cells. Chemical Engineering Journal, 2020, 381: 122679

[72]

Ji J, Woo J, Chung Y. . Membraneless enzymatic biofuel cells using iron and cobalt co-doped ordered mesoporous porphyrinic carbon based catalyst. Applied Surface Science, 2020, 511: 145449

[73]

Feng X, Xiao X, Zhang J. . Cobalt/nitrogen doped porous carbon as catalysts for efficient oxygen reduction reaction: Towards hybrid enzymatic biofuel cells. Electrochimica Acta, 2021, 389: 138791

[74]

Zhang H, Huang L, Chen J. . Bionic design of cytochrome c oxidase-like single-atom nanozymes for oxygen reduction reaction in enzymatic biofuel cells. Nano Energy, 2021, 83: 105798

[75]

Zhao P, Sun X, Hao S. . Glucose oxidase-like rhodium single-atom nanozymes: A mimic platform for biometabolism and electrometabolism of glucose oxidation at neutral pH. ACS Energy Letters, 2023, 8(4): 1697–1704

[76]

Chen H, Bai Z, Dai X. . In situ engineering of intracellular hemoglobin for implantable high performance biofuel cells. Angewandte Chemie International Edition, 2019, 58(20): 6663–6668

[77]

Escalona-Villalpando R A, Ortiz-Ortega E, Bocanegra-Ugalde J P. . Clean energy from human sweat using an enzymatic patch. Journal of Power Sources, 2019, 412: 496–504

[78]

Wang C, Shim E, Chang H K. . Sustainable and high-power wearable glucose biofuel cell using long-term and high-speed flow in sportswear fabrics. Biosensors & Bioelectronics, 2020, 169: 112652

[79]

Vanmathi S, Goel S. Microfluidic carbon cloth-based enzymatic glucose biofuel cell for sustainably powering a microelectronic circuit. Journal of Micromechanics and Microengineering, 2024, 34(8): 085004

[80]

Tominaga M, Kuwahara K, Tsushida M. . Cellulose nanofiber-based electrode as a component of an enzyme-catalyzed biofuel cell. RSC Advances, 2020, 10(37): 22120–22125

[81]

Shen F, Pankratov D, Halder A. . Two-dimensional graphene paper supported flexible enzymatic fuel cells. Nanoscale Advances, 2019, 1(7): 2562–2570

[82]

Kong X, Gai P, Ge L. . Laser-scribed N-doped graphene for integrated flexible enzymatic biofuel cells. ACS Sustainable Chemistry & Engineering, 2020, 8(33): 12437–12442

[83]

Bandodkar A J, Gutruf P, Choi J. . Battery-free, skin-interfaced microfluidic/electronic systems for simultaneous electrochemical, colorimetric, and volumetric analysis of sweat. Science Advances, 2019, 5(1): eaav3294

[84]

Huang X, Li H, Li J. . Transient, implantable, ultrathin biofuel cells enabled by laser-induced graphene and gold nanoparticles composite. Nano Letters, 2022, 22(8): 3447–3456

[85]

Shitanda I, Morigayama Y, Iwashita R. . Paper-based lactate biofuel cell array with high power output. Journal of Power Sources, 2021, 489: 229533

[86]

Rewatkar P, Goel S. Paper-based membraneless co-laminar microfluidic glucose biofuel cell with MWCNT-fed bucky paper bioelectrodes. IEEE Transactions on Nanobioscience, 2018, 17(4): 374–379

[87]

Rewatkar P, Kothuru A, Goel S. PDMS-based microfluidic glucose biofuel cell integrated with optimized laser-induced flexible graphene bioelectrodes. IEEE Transactions on Electron Devices, 2020, 67(4): 1832–1838

[88]

Yin S, Liu X, Kaji T. . Fiber-crafted biofuel cell bracelet for wearable electronics. Biosensors & Bioelectronics, 2021, 179: 113107

[89]

Lee J, Kim K Y, Kwon Y. . Stretchable enzymatic biofuel cells based on microfluidic structured elastomeric polydimethylsiloxane with wrinkled gold electrodes. Advanced Functional Materials, 2024, 34(1): 2309386

[90]

Sim H J, Lee D Y, Kim H. . Stretchable fiber biofuel cell by rewrapping multiwalled carbon nanotube sheets. Nano Letters, 2018, 18(8): 5272–5278

[91]

Wang J, Sun M, Pei X. . Flexible biofuel cell-in-a-tube (iezTube): An entirely self-contained biofuel cell for wearable green bio-energy harvesting. Advanced Functional Materials, 2022, 32(48): 2209697

[92]

Shen F, Pankratov D, Pankratova G. . Supercapacitor/biofuel cell hybrid device employing biomolecules for energy conversion and charge storage. Bioelectrochemistry, 2019, 128: 94–99

[93]

Wan J, Mi L, Tian Z. . A single-liquid miniature biofuel cell with boosting power density via gas diffusion bioelectrodes. Journal of Materials Chemistry. B, Materials for Biology and Medicine, 2020, 8(16): 3550–3556

[94]

Lv J, Jeerapan I, Tehrani F. . Sweat-based wearable energy harvesting-storage hybrid textile devices. Energy & Environmental Science, 2018, 11(12): 3431–3442

[95]

Lee D, Jeong S H, Yun S. . Totally implantable enzymatic biofuel cell and brain stimulator operating in bird through wireless communication. Biosensors & Bioelectronics, 2021, 171: 112746

[96]

Yin L, Kim K N, Lv J. . A self-sustainable wearable multi-modular E-textile bioenergy microgrid system. Nature Communications, 2021, 12(1): 1542

[97]

Yun J, Li Z, Miao X. . A tear-based battery charged by biofuel for smart contact lenses. Nano Energy, 2023, 110: 108344

[98]

Pankratova G, Bollella P, Pankratov D. . Supercapacitive biofuel cells. Current Opinion in Biotechnology, 2021, 73: 179–187

[99]

Lee J, Han S, Kwon Y. Self-charging hybrid energy devices collaborated with enzymatic biofuel cells and supercapacitors. Chemical Engineering Journal, 2024, 487: 150557

[100]

Pankratov D, Shen F, Ortiz R. . Fuel-independent and membrane-less self-charging biosupercapacitor. Chemical Communications, 2018, 54(83): 11801–11804

[101]

Guan S, Yang Y, Wang Y. . A dual-functional mxene-based bioanode for wearable self-charging biosupercapacitors. Advanced Materials, 2024, 36(1): 2305854

[102]

Huang J, Zhang Y, Ding F. . Rational design of electroactive redox enzyme nanocapsules for high-performance biosensors and enzymatic biofuel cell. Biosensors & Bioelectronics, 2021, 174: 112805

[103]

Katz E, Bückmann A F, Willner I. Self-powered enzyme-based biosensors. Journal of the American Chemical Society, 2001, 123(43): 10752–10753

[104]

Shitanda I, Fujimura Y, Nohara S. . Paper-based disk-type self-powered glucose biosensor based on screen-printed biofuel cell array. Journal of the Electrochemical Society, 2019, 166(12): B1063–B1068

[105]

Ohayon D, Nikiforidis G, Savva A. . Biofuel powered glucose detection in bodily fluids with an n-type conjugated polymer. Nature Materials, 2020, 19(4): 456–463

[106]

Hao S, Zhang H, Sun X. . A mediator-free self-powered glucose biosensor based on a hybrid glucose/MnO2 enzymatic biofuel cell. Nano Research, 2021, 14(3): 707–714

[107]

Lv P, Zhou H, Mensah A. . A highly flexible self-powered biosensor for glucose detection by epitaxial deposition of gold nanoparticles on conductive bacterial cellulose. Chemical Engineering Journal, 2018, 351: 177–188

[108]

Hou Y Y, Xu J, Xie W Z. . 3D DNA walker recognition-driven homogeneous dual-mode sensing strategy based on enzyme biofuel cell for ultrasensitive detection of HER2. Sensors and Actuators. B, Chemical, 2023, 376: 132998

[109]

Song Y, Ya Y, Cen X. . Multiple signal amplification strategy induced by biomarkers of lung cancer: A self-powered biosensing platform adapted for smartphones. International Journal of Biological Macromolecules, 2024, 264: 130661

[110]

Ji K, Liang Z, Wang P. . Mxene-based capacitive enzyme-free biofuel cell self-powered sensor for lead ion detection in human plasma. Chemical Engineering Journal, 2024, 495: 153598

[111]

Zhang J, Liu J, Su H. . A wearable self-powered biosensor system integrated with diaper for detecting the urine glucose of diabetic patients. Sensors and Actuators. B, Chemical, 2021, 341: 130046

[112]

Nithianandam P, Liu T L, Chen S. . Flexible, miniaturized sensing probes inspired by biofuel cells for monitoring synaptically released glutamate in the mouse brain. Angewandte Chemie International Edition, 2023, 62(42): e202310245

[113]

Gu C, Gai P, Kong X. . Self-powered biosensing platform based on “signal-on” enzymatic biofuel cell for DNA methyltransferase activity analysis and inhibitor screening. Analytical Chemistry, 2020, 92(7): 5426–5430

[114]

Wang F T, Wang Y H, Xu J. . A high-energy sandwich-type self-powered biosensor based on DNA bioconjugates and a nitrogen doped ultra-thin carbon shell. Journal of Materials Chemistry. B, Materials for Biology and Medicine, 2020, 8(7): 1389–1395

[115]

Gai P, Gu C, Hou T. . Integration of biofuel cell-based self-powered biosensing and homogeneous electrochemical strategy for ultrasensitive and easy-to-use bioassays of microRNA. ACS Applied Materials & Interfaces, 2018, 10(11): 9325–9331

[116]

Gu C, Kong X, Liu X. . Enzymatic biofuel-cell-based self-powered biosensor integrated with dna amplification strategy for ultrasensitive detection of single-nucleotide polymorphism. Analytical Chemistry, 2019, 91(13): 8697–8704

[117]

Gu C, Gai P, Han L. . Enzymatic biofuel cell-based self-powered biosensing of protein kinase activity and inhibition via thiophosphorylation-mediated interface engineering. Chemical Communications, 2018, 54(43): 5438–5441

[118]

Wang F T, Wang Y H, Xu J. . Boosting performance of self-powered biosensing device with high-energy enzyme biofuel cells and cruciform DNA. Nano Energy, 2020, 68: 104310

[119]

Zhou M, Zhou N, Kuralay F. . A self-powered “sense-act-treat” system that is based on a biofuel cell and controlled by boolean logic. Angewandte Chemie International Edition, 2012, 51(11): 2686–2689

[120]

Ogawa Y, Kato K, Miyake T. . Organic transdermal iontophoresis patch with built-in biofuel cell. Advanced Healthcare Materials, 2015, 4(4): 506–510

[121]

Xiao X, McGourty K D, Magner E. Enzymatic biofuel cells for self-powered, controlled drug release. Journal of the American Chemical Society, 2020, 142(26): 11602–11609

[122]

Bollella P, Guo Z, Edwardraja S. . Self-powered molecule release systems activated with chemical signals processed through reconfigurable implication or inhibition Boolean logic gates. Bioelectrochemistry, 2021, 138: 107735

[123]

Herkendell K, Stemmer A, Tel-Vered R. Extending the operational lifetimes of all-direct electron transfer enzymatic biofuel cells by magnetically assembling and exchanging the active biocatalyst layers on stationary electrodes. Nano Research, 2019, 12(4): 767–775

[124]

Lee S S, Choi K H, Kim S H. . Wearable supercapacitors printed on garments. Advanced Functional Materials, 2018, 28(11): 1705571

[125]

Pak J, Chang W, Kwon C H. . Recent advances in enzyme-based biofuel cells using glucose fuel: Achieving high power output and enhanced operational stability. Advanced Functional Materials, 2024, 2415933

RIGHTS & PERMISSIONS

Higher Education Press 2025

AI Summary AI Mindmap
PDF (8126KB)

3441

Accesses

0

Citation

Detail

Sections
Recommended

AI思维导图

/