Conductive halloysite clay nanotubes for high performance sodium ion battery cathode

Applied Clay Science - Tập 213 - Trang 106265 - 2021
Xiang Cao1, Yingjuan Sun1, Yongrong Sun2, Dong Xie2, Hongyan Li1, Mingxian Liu1
1Department of Materials Science and Engineering, Jinan University, Guangzhou 510632, China
2Institute of Bioengineering, Guangdong Academy of Sciences, Guangzhou 510316, China

Tài liệu tham khảo

Abdullayev, 2012, Enlargement of halloysite clay nanotube lumen by selective etching of aluminum oxide, ACS Nano, 6, 7216, 10.1021/nn302328x Ballav, 2014, Polypyrrole-coated halloysite nanotube clay nanocomposite: synthesis, characterization and Cr (VI) adsorption behaviour, Appl. Clay Sci., 102, 60, 10.1016/j.clay.2014.10.008 Baumgartner, 2014, Geomimetics for green polymer synthesis: highly ordered polyimides via hydrothermal techniques, Polym. Chem., 5, 3771, 10.1039/C4PY00263F Brindley, 1984, X-ray studies of halloysite and metahalloysite: part II. The transition of halloysite to metahalloysite in relation to relative humidity, Mineral. Magaz. J. Mineral. Soc., 28, 407, 10.1180/minmag.1948.028.203.02 Cao, 2019, Synergistical coupling interconnected ZnS/SnS2 nanoboxes with polypyrrole-derived N/S dual-doped carbon for boosting high-performance sodium storage, Small, 15, 1804861, 10.1002/smll.201804861 Cavallaro, 2018, Nanohydrogel formation within the halloysite lumen for triggered and sustained release, ACS Appl. Mater. Interfaces, 10, 8265, 10.1021/acsami.7b19361 Cavallaro, 2020, Halloysite/keratin nanocomposite for human hair photoprotection coating, ACS Appl. Mater. Interfaces, 12, 24348, 10.1021/acsami.0c05252 Chen, 2018, A novel graphene oxide wrapped Na2Fe2(SO4)3/C cathode composite for long life and high energy density sodium-ion batteries, Adv. Energy Mater., 8, 1800944, 10.1002/aenm.201800944 De Silva, 2018, Drug-loaded halloysite nanotube-reinforced electrospun alginate-based nanofibrous scaffolds with sustained antimicrobial protection, ACS Appl. Mater. Interfaces, 10, 33913, 10.1021/acsami.8b11013 Deng, 2013, A low cost, all-organic Na-ion battery based on polymeric cathode and anode, Sci. Rep., 3, 1, 10.1038/srep02671 Du, 2008, Carboxylated butadiene–styrene rubber/halloysite nanotube nanocomposites: interfacial interaction and performance, Polymer, 49, 4871, 10.1016/j.polymer.2008.08.042 Du, 2010, Newly emerging applications of halloysite nanotubes: a review, Polym. Int., 59, 574, 10.1002/pi.2754 Ece, 2007, Clay mineralogy and chemistry of halloysite and alunite deposits in the Turplu area, Balikesir, Turkey, Clay Clay Miner., 55, 18, 10.1346/CCMN.2007.0550102 Fernández, 2018, Polymeric redox-active electrodes for sodium-ion batteries, ChemSusChem, 11, 311, 10.1002/cssc.201701471 Huang, 2017, Cellulose–halloysite nanotube composite hydrogels for curcumin delivery, Cellulose, 24, 2861, 10.1007/s10570-017-1316-8 Hughes, 2010, Use of naturally occurring halloysite nanotubes for enhanced capture of flowing cells, Langmuir, 26, 12155, 10.1021/la101179y Hwang, 2017, Sodium-ion batteries: present and future, Chem. Soc. Rev., 46, 3529, 10.1039/C6CS00776G Joussein, 2005, Halloysite clay minerals—a review, Clay Miner., 40, 383, 10.1180/0009855054040180 Lazzara, 2018, An assembly of organic-inorganic composites using halloysite clay nanotubes, Curr. Opin. Colloid Interface Sci., 35, 42, 10.1016/j.cocis.2018.01.002 Li, 2019, Robust graphene layer modified Na2MnP2O7 as a durable high-rate and high energy cathode for Na-ion batteries, Energy Stor. Mater., 16, 383 Lin, 2017, Natural halloysite nano-clay electrolyte for advanced all-solid-state lithium-sulfur batteries, Nano Energy, 31, 478, 10.1016/j.nanoen.2016.11.045 Liu, 2017, Conductive carboxylated styrene butadiene rubber composites by incorporation of polypyrrole-wrapped halloysite nanotubes, Compos. Sci. Technol., 143, 56, 10.1016/j.compscitech.2017.03.001 Liu, 2020, Carbon quantum dot modified Na3V2(PO4)2F3 as a high-performance cathode material for sodium-ion batteries, J. Mater. Chem. A, 8, 18872, 10.1039/D0TA04307A Lu, 2011, Direct measurements of the Young’s modulus of a single halloysite nanotube using a transmission electron microscope with a bending stage, J. Nanosci. Nanotechnol., 11, 7789, 10.1166/jnn.2011.4720 Lvov, 2008, Halloysite clay nanotubes for controlled release of protective agents, ACS Nano, 2, 814, 10.1021/nn800259q Madejová, 2003, FTIR techniques in clay mineral studies, Vib. Spectrosc., 31, 1, 10.1016/S0924-2031(02)00065-6 Mishra, 2020, Recent progress in electrode and electrolyte materials for flexible sodium-ion batteries, J. Mater. Chem. A, 8, 22507, 10.1039/D0TA07188A Panchal, 2018, Self-assembly of clay nanotubes on hair surface for medical and cosmetic formulations, Nanoscale, 10, 18205, 10.1039/C8NR05949G Pei, 2020, Confining sulfur particles in clay nanotubes with improved cathode performance of lithium–sulfur batteries, J. Power Sources, 450, 227698, 10.1016/j.jpowsour.2020.227698 Pu, 2019, Recent progress in rechargeable sodium-ion batteries: toward high-power applications, Small, 15, 1805427, 10.1002/smll.201805427 Shchukin, 2005, Halloysite nanotubes as biomimetic nanoreactors, Small, 1, 510, 10.1002/smll.200400120 Shinde, 2020, Designing of nanoflakes anchored nanotubes-like MnCo2S4/halloysite composites for advanced battery like supercapacitor application, Electrochim. Acta, 341, 10.1016/j.electacta.2020.135973 Su, 2015, Polypyrrole hollow nanospheres: stable cathode materials for sodium-ion batteries, Chem. Commun., 51, 16092, 10.1039/C5CC04229A Subramaniyam, 2017, Self-assembled porous carbon microparticles derived from halloysite clay as a lithium battery anode, J. Mater. Chem. A, 5, 7345, 10.1039/C7TA00940B Sun, 2016, A biodegradable polydopamine-derived electrode material for high-capacity and long-life lithium-ion and sodium-ion batteries, Angew. Chem. Int. Ed., 55, 10662, 10.1002/anie.201604519 Vergaro, 2010, Cytocompatibility and uptake of halloysite clay nanotubes, Biomacromolecules, 11, 820, 10.1021/bm9014446 Wan, 2020, Stepwise hollow prussian blue nanoframes/carbon nanotubes composite film as ultrahigh rate sodium ion cathode, Adv. Funct. Mater., 30, 2002624, 10.1002/adfm.202002624 Wang, 2015, P2-Na0.6 [Cr0.6Ti0.4]O2 cation-disordered electrode for high-rate symmetric rechargeable sodium-ion batteries, Nat. Commun., 6, 6954, 10.1038/ncomms7954 Wang, 2019, Carbon coated halloysite nanotubes as efficient sulfur host materials for lithium sulfur batteries, Appl. Clay Sci., 179, 105172, 10.1016/j.clay.2019.105172 Wang, 2020, A two-dimensional metal–organic polymer enabled by robust nickel–nitrogen and hydrogen bonds for exceptional sodium-ion storage, Angew. Chem. Int. Ed., 59, 22126, 10.1002/anie.202008726 Wu, 2008, High-performance polypyrrole nanoparticles counter electrode for dye-sensitized solar cells, J. Power Sources, 181, 172, 10.1016/j.jpowsour.2008.03.029 Wu, 2016, A sulfurization-based oligomeric sodium salt as a high-performance organic anode for sodium ion batteries, Chem. Commun., 52, 11207, 10.1039/C6CC05727F Wu, 2019, Superhydrophobic polyurethane foam coated with polysiloxane-modified clay nanotubes for efficient and recyclable oil absorption, ACS Appl. Mater. Interfaces, 11, 25445, 10.1021/acsami.9b08023 Xiong, 2013, The use of nitrogen-doped graphene supporting Pt nanoparticles as a catalyst for methanol electrocatalytic oxidation, Carbon, 52, 181, 10.1016/j.carbon.2012.09.019 Xu, 2015, Anthraquinone-based polyimide cathodes for sodium secondary batteries, Electrochem. Commun., 60, 117, 10.1016/j.elecom.2015.08.027 Yang, 2010, Preparation and characterization of coaxial halloysite/polypyrrole tubular nanocomposites for electrochemical energy storage, Electrochim. Acta, 55, 6857, 10.1016/j.electacta.2010.05.080 Yang, 2020, Nano-biocomposite films fabricated from cellulose fibers and halloysite nanotubes, Appl. Clay Sci., 190, 105565, 10.1016/j.clay.2020.105565 You, 2018, Progress in high-voltage cathode materials for rechargeable sodium-ion batteries, Adv. Energy Mater., 8, 1701785, 10.1002/aenm.201701785 Zhang, 2021, Nitrogen-doped three-dimensional porous carbon anode derived from hard halloysite template for sodium-ion batteries, Appl. Clay Sci., 200, 105916, 10.1016/j.clay.2020.105916 Zhao, 2012, An aniline-nitroaniline copolymer as a high capacity cathode for Na-ion batteries, Electrochem. Commun., 21, 36, 10.1016/j.elecom.2012.05.015 Zhao, 2020, Improving electrocatalytic activities of FeCo2O4@FeCo2S4@PPy electrodes by surface/interface regulation, Nano Energy, 104715 Zheng, 2020, Ionogel-based sodium ion micro-batteries with a 3D Na-ion diffusion mechanism enable ultrahigh rate capability, Energy Environ. Sci., 13, 821, 10.1039/C9EE03219C Zhou, 2013, Electroactive organic anion-doped polypyrrole as a low cost and renewable cathode for sodium-ion batteries, J. Polym. Sci. B Polym. Phys., 51, 114, 10.1002/polb.23184 Zhou, 2015, Fabrication of a high-performance fertilizer to control the loss of water and nutrient using micro/nano networks, ACS Sustain. Chem. Eng., 3, 645, 10.1021/acssuschemeng.5b00072 Zhou, 2016, Synthesis of nano-sized silicon from natural halloysite clay and its high performance as anode for lithium-ion batteries, J. Power Sources, 324, 33, 10.1016/j.jpowsour.2016.05.058 Zhou, 2020, Hexacyanoferrate-type prussian blue analogs: principles and advances toward high-performance sodium and potassium ion batteries, Adv. Energy Mater., 2000943 Zhu, 2013, Self-doped polypyrrole with ionizable sodium sulfonate as a renewable cathode material for sodium ion batteries, Chem. Commun., 49, 11370, 10.1039/c3cc46642f Zhuang, 2020, Partial sodiation induced laminate structure and high cycling stability of black phosphorous for sodium-ion batteries, Nanoscale, 12, 19609, 10.1039/D0NR00805B