The good, the bad and the porous: A review of carbonaceous materials for flexible supercapacitor applications

Energy Reports - Tập 6 - Trang 148-156 - 2020
Nicholas Hillier1, Sheng Yong2, Steve Beeby2
1Energy Storage and its Applications CDT, University of Southampton, Southampton, SO17 1BJ, UK
2Smart Electronic Materials and Systems Group, University of Southampton, Southampton, SO17 1BJ, UK

Tóm tắt

Từ khóa


Tài liệu tham khảo

Dehghani, 2018, Market-driven management of start-ups: The case of wearable technology, Appl Comput Inform

La, 2018, Two-layered and stretchable e-textile patches for wearable healthcare electronics, Adv Healthc Mater, 7, 1801033, 10.1002/adhm.201801033

Mostafalu, 2017, A textile dressing for temporal and dosage controlled drug delivery, Adv Funct Mater, 27, 10.1002/adfm.201702399

Niijima, 2018, Biceps fatigue estimation with an E-textile headband, 222

Lee, 2015, Conductive fiber-based ultrasensitive textile pressure sensor for wearable electronics, Adv Mater, 27, 2433, 10.1002/adma.201500009

Sibinski, 2010, Flexible temperature sensors on fibers, Sensors, 10, 10.3390/s100907934

Deng, 2019, A tactile sensing textile with bending-independent pressure perception and spatial acuity, Carbon, 149, 63, 10.1016/j.carbon.2019.04.019

Kapoor, 2019, Toward fully manufacturable, fiber assembly–based concurrent multimodal and multifunctional sensors for e-textiles, Adv Mater Technol, 4, 1800281, 10.1002/admt.201800281

Jayathilaka, 2019, Significance of nanomaterials in wearables: A review on wearable actuators and sensors, Adv Mater, 31, 1805921, 10.1002/adma.201805921

Jang, 2017, Simple approach to high-performance stretchable heaters based on kirigami patterning of conductive paper for wearable thermotherapy applications, ACS Appl Mater Interfaces, 9, 19612, 10.1021/acsami.7b03474

Huang WH, Wang Y, Hsu P, Wang W, Cavalier A, Huang T, et al., editors. Flexible LED displays for electronic textiles. In: 2018 international flexible electronics technology conference. 2018.

de Vos, 2016, Dispenser printed electroluminescent lamps on textiles for smart fabric applications, Smart Mater Struct, 25

2017, Running functional sport vest and short for e-textile applications

Hamdan, 2018, Sketch & stitch: Interactive embroidery for E-textiles, 1

Rabbitt, 2019, Effect of ballistic impacts on batteries and the potential for injury, J R Army Med Corps, 10.1136/jramc-2018-001113

Lee, 2015, Triboelectric energy harvester based on wearable textile platforms employing various surface morphologies, Nano Energy, 12, 410, 10.1016/j.nanoen.2015.01.009

Tian, 2018, Core–shell coaxially structured triboelectric nanogenerator for energy harvesting and motion sensing, RSC Adv, 8, 2950, 10.1039/C7RA12739A

Mokhtari, 2019, Triaxial braided piezo fiber energy harvesters for self-powered wearable technologies, J Mater Chem A, 7, 8245, 10.1039/C8TA10964H

Almusallam, 2017, Flexible piezoelectric nano-composite films for kinetic energy harvesting from textiles, Nano Energy, 33, 146, 10.1016/j.nanoen.2017.01.037

Arumugam, 2018, Solution processed organic solar cells on textiles, IEEE J Photovolt, 8, 1710, 10.1109/JPHOTOV.2018.2871334

Clarivate. Web of Science 2019 [cited 2019 16/05/2019]. Available from: http://apps.webofknowledge.com/WOS_GeneralSearch_input.do?product=WOS&search_mode=GeneralSearch&SID=D2btQLVfyjn1UsyJTcU&preferencesSaved.

Scholz, 2011, From the Leiden jar to the discovery of the glass electrode by Max Cremer, J Solid State Electrochem, 15, 5, 10.1007/s10008-009-0962-7

Hiroshi, 2003, Base-metal electrode-multilayer ceramic capacitors: Past, present and future perspectives, Japan J Appl Phys, 42, 1

Morley, 1973, Electrolytic capacitors: their fabrication and the interpretation of their operational behaviour, Radio Electron Eng, 43, 421, 10.1049/ree.1973.0066

Goad, 2000, Modelling the capacitance of d.c. etched aluminium electrolytic capacitor foil, J Appl Electrochem, 30, 285, 10.1023/A:1003527316173

Jang, 2003, Characteristics of tantalum electrolytic capacitors using soluble polypyrrole electrolyte, J Power Sources, 124, 338, 10.1016/S0378-7753(03)00594-9

Chen, 2009, Progress in electrical energy storage system: A critical review, Progress Nat Sci, 19, 291, 10.1016/j.pnsc.2008.07.014

Otowa, 1997, Development of KOH activated high surface area carbon and its application to drinking water purification, Carbon, 35, 1315, 10.1016/S0008-6223(97)00076-6

Zhang, 2009, Carbon-based materials as supercapacitor electrodes, Chem Soc Rev, 38, 2520, 10.1039/b813846j

Davies, 2011, Material advancements in supercapacitors: From activated carbon to carbon nanotube and graphene, Can J Chem Eng, 89, 1342, 10.1002/cjce.20586

González, 2016, Review on supercapacitors: Technologies and materials, Renew Sustain Energy Rev, 58, 1189, 10.1016/j.rser.2015.12.249

Grahame, 1947, The electrical double layer and the theory of electrocapillarity, Chem Rev, 41, 441, 10.1021/cr60130a002

Grahame, 1961, Components of charge and potential in the inner region of the electrical double layer: aqueous potassium chloride solutions in contact with mercury at 25, J Am Chem Soc, 83, 1291, 10.1021/ja01467a009

Conway, 1997, The role and utilization of pseudocapacitance for energy storage by supercapacitors, J Power Sources, 66, 1, 10.1016/S0378-7753(96)02474-3

Conway, 2003, Double-layer and pseudocapacitance types of electrochemical capacitors and their applications to the development of hybrid devices, J Solid State Electrochem, 7, 637, 10.1007/s10008-003-0395-7

Zhi, 2013, Nanostructured carbon–metal oxide composite electrodes for supercapacitors: a review, Nanoscale, 5, 72, 10.1039/C2NR32040A

Vangari, 2013, Supercapacitors: Review of materials and fabrication methods, J Energy Eng, 139, 72, 10.1061/(ASCE)EY.1943-7897.0000102

Villarreal, 2017, Carbon allotropes as sensors for environmental monitoring, Curr Opin Electrochem, 3, 106, 10.1016/j.coelec.2017.07.004

Choi, 2010, Synthesis of graphene and its applications: A review, Crit Rev Solid State Mater Sci, 35, 52, 10.1080/10408430903505036

Park, 2009, Chemical methods for the production of graphenes, Nature Nanotechnology, 4, 217, 10.1038/nnano.2009.58

Shao, 2010, Graphene based electrochemical sensors and biosensors: A review, Electroanalysis, 22, 1027, 10.1002/elan.200900571

Geim, 2007, The rise of graphene, Nat Mater, 6, 183, 10.1038/nmat1849

Pumera, 2009, Electrochemistry of graphene: new horizons for sensing and energy storage, Chem Record, 9, 211, 10.1002/tcr.200900008

Ke, 2016, Graphene-based materials for supercapacitor electrodes – A review, J Materiomics, 2, 37, 10.1016/j.jmat.2016.01.001

Kroto, 1985, C60: Buckminsterfullerene, Nature, 318, 162, 10.1038/318162a0

Zahin, 2019, Nanoparticles and its biomedical applications in health and diseases: special focus on drug delivery, Environ Sci Pollut Res

Borenstein, 2017, Carbon-based composite materials for supercapacitor electrodes: a review, J Mater Chem A, 5, 12653, 10.1039/C7TA00863E

Sun, 2013, Developing polymer composite materials: carbon nanotubes or graphene?, Adv Mater, 25, 5153, 10.1002/adma.201301926

Sharma, 2018, Glassy carbon: A promising material for micro- and nanomanufacturing, Materials (Basel), 11, 1857, 10.3390/ma11101857

Franklin Rosalind, 1951, Crystallite growth in graphitizing and non-graphitizing carbons, Proc R Soc Lond Ser A Math Phys Eng Sci, 209, 196

Yi, 2017, Electrochemical corrosion of a glassy carbon electrode, Catal Today, 295, 32, 10.1016/j.cattod.2017.07.013

Ye, 2015, Doping carbon to improve the tribological performance of CrN coatings in seawater, Tribol Int, 90, 362, 10.1016/j.triboint.2015.04.008

Silva, 2011, Application of amorphous carbon based materials as antireflective coatings on crystalline silicon solar cells, J Appl Phys, 110, 10.1063/1.3622515

Gonçalves, 2011, New material for low-dose brachytherapy seeds: Xe-doped amorphous carbon films with post-growth neutron activated 125I, Appl Radiat Isot, 69, 118, 10.1016/j.apradiso.2010.08.005

Hu, 2010, Stretchable, porous, and conductive energy textiles, Nano Lett, 10, 708, 10.1021/nl903949m

Niu, 2013, Highly stretchable, integrated supercapacitors based on single-walled carbon nanotube films with continuous reticulate architecture, Adv Mater, 25, 1058, 10.1002/adma.201204003

Liu, 2014, Nanostructured graphene composite papers for highly flexible and foldable supercapacitors, Adv Mater, 26, 4855, 10.1002/adma.201401513

Zhang, 2013, Porous 3D graphene-based bulk materials with exceptional high surface area and excellent conductivity for supercapacitors, Sci Rep, 3, 1408, 10.1038/srep01408

Barbieri, 2005, Capacitance limits of high surface area activated carbons for double layer capacitors, Carbon, 43, 1303, 10.1016/j.carbon.2005.01.001

Qu, 1998, Studies of activated carbons used in double-layer capacitors, J Power Sources, 74, 99, 10.1016/S0378-7753(98)00038-X

Gamby, 2001, Studies and characterisations of various activated carbons used for carbon/carbon supercapacitors, J Power Sources, 101, 109, 10.1016/S0378-7753(01)00707-8

Yong, 2018, Solid-state supercapacitor fabricated in a single woven textile layer for E-textiles applications, Adv Eng Mater, 20, 10.1002/adem.201700860

Ma, 2016, Bottom-up fabrication of activated carbon fiber for all-solid-state supercapacitor with excellent electrochemical performance, ACS Appl Mater Interfaces, 8, 14622, 10.1021/acsami.6b04026

Jost, 2011, Carbon coated textiles for flexible energy storage, Energy Environ Sci, 4, 5060, 10.1039/c1ee02421c

Liu, 2012, Flexible and conductive nanocomposite electrode based on graphene sheets and cotton cloth for supercapacitor, J Mater Chem, 22, 17245, 10.1039/c2jm32659k

Meng, 2013, All-graphene core-sheath microfibers for all-solid-state, stretchable fibriform supercapacitors and wearable electronic textiles, Adv Mater, 25, 2326, 10.1002/adma.201300132

Pushparaj, 2007, Flexible energy storage devices based on nanocomposite paper, Proc Natl Acad Sci, 104, 13574, 10.1073/pnas.0706508104

Fan, 2017, Assembly of graphene aerogels into the 3D biomass-derived carbon frameworks on conductive substrates for flexible supercapacitors, Carbon, 111, 658, 10.1016/j.carbon.2016.10.056

Lu, 2013, H-TiO2@MnO2//H-TiO2@C core–shell nanowires for high performance and flexible asymmetric supercapacitors, Adv Mater, 25, 267, 10.1002/adma.201203410

He, 2013, Freestanding three-dimensional graphene/MnO2 composite networks as ultralight and flexible supercapacitor electrodes, ACS Nano, 7, 174, 10.1021/nn304833s

Zang, 2015, Graphene/polyaniline woven fabric composite films as flexible supercapacitor electrodes, Nanoscale, 7, 7318, 10.1039/C5NR00584A

Zhao, 2015, Reduced graphene oxide and polypyrrole/reduced graphene oxide composite coated stretchable fabric electrodes for supercapacitor application, Electrochim Acta, 172, 12, 10.1016/j.electacta.2015.05.019

Libra, 2011, Hydrothermal carbonization of biomass residuals: a comparative review of the chemistry, processes and applications of wet and dry pyrolysis, Biofuels, 2, 71, 10.4155/bfs.10.81

Kim, 2016, Removal of Cu2+ by biochars derived from green macroalgae, Environ Sci Pollut Res, 23, 985, 10.1007/s11356-015-4368-z

Shao, 2015, Graphene-based materials for flexible supercapacitors, Chem Soc Rev, 44, 3639, 10.1039/C4CS00316K

Shah, 2016, Synthesis of carbon nanotubes by catalytic chemical vapour deposition: A review on carbon sources, catalysts and substrates, Mater Sci Semicond Process, 41, 67, 10.1016/j.mssp.2015.08.013

Couteau, 2003, CVD synthesis of high-purity multiwalled carbon nanotubes using CaCO3 catalyst support for large-scale production, Chem Phys Lett, 378, 9, 10.1016/S0009-2614(03)01218-1

Dong, 2015, High-performance compressible supercapacitors based on functionally synergic multiscale carbon composite textiles, J Mater Chem A, 3, 4729, 10.1039/C4TA06494A

Wang, 2007, 3D aperiodic hierarchical porous graphitic carbon material for high-rate electrochemical capacitive energy storage, Angew Chem, Int Ed Engl, 47, 373, 10.1002/anie.200702721

Li, 2007, Nitrogen-containing carbon spheres with very large uniform mesopores: The superior electrode materials for EDLC in organic electrolyte, Carbon, 45, 1757, 10.1016/j.carbon.2007.05.004

Lorjai, 2009, Porous structure of polybenzoxazine-based organic aerogel prepared by sol–gel process and their carbon aerogels, J Sol-Gel Sci Technol, 52, 56, 10.1007/s10971-009-1992-4

Li, 2009, Theoretical and experimental specific capacitance of polyaniline in sulfuric acid, J Power Sources, 190, 578, 10.1016/j.jpowsour.2009.01.052

Meng, 2017, Research progress on conducting polymer based supercapacitor electrode materials, Nano Energy, 36, 268, 10.1016/j.nanoen.2017.04.040

Snook, 2011, Conducting-polymer-based supercapacitor devices and electrodes, J Power Sources, 196, 1, 10.1016/j.jpowsour.2010.06.084

Frackowiak, 2006, Supercapacitors based on conducting polymers/nanotubes composites, J Power Sources, 153, 413, 10.1016/j.jpowsour.2005.05.030

Wang, 2009, Graphene oxide doped polyaniline for supercapacitors, Electrochem Commun, 11, 1158, 10.1016/j.elecom.2009.03.036

Toupin, 2004, Charge storage mechanism of MnO2 electrode used in aqueous electrochemical capacitor, Chem Mater, 16, 3184, 10.1021/cm049649j

Liu, 2010, Hybrid supercapacitor based on coaxially coated manganese oxide on vertically aligned carbon nanofiber arrays, Chem Mater, 22, 5022, 10.1021/cm101591p

Yuan, 2012, Flexible solid-state supercapacitors based on carbon nanoparticles/MnO2 nanorods hybrid structure, ACS Nano, 6, 656, 10.1021/nn2041279

Liu, 2017, Electrostatic-interaction-assisted construction of 3D networks of manganese dioxide nanosheets for flexible high-performance solid-state asymmetric supercapacitors, ACS Nano, 11, 7879, 10.1021/acsnano.7b02344