Engineering Surface Oxygenated Functionalities on Commercial Carbon toward Ultrafast Sodium Storage in Ether-Based Electrolytes

التفاصيل البيبلوغرافية
العنوان: Engineering Surface Oxygenated Functionalities on Commercial Carbon toward Ultrafast Sodium Storage in Ether-Based Electrolytes
المؤلفون: Qian Sun, Jian Liu, Per-Anders Glans, Tsun-Kong Sham, Wei Xiao, Jinghua Guo, Biwei Xiao, Xifei Li, Xueliang Sun, Ruying Li, Xia Li, Wanli Yang, Jun Li
المصدر: ACS applied materials & interfaces, vol 12, iss 33
سنة النشر: 2020
مصطلحات موضوعية: Materials science, Sodium, chemistry.chemical_element, Ionic bonding, 02 engineering and technology, Electrolyte, 010402 general chemistry, Electrochemistry, 7. Clean energy, 01 natural sciences, Engineering, Affordable and Clean Energy, pseudocapacitive behavior, General Materials Science, Graphite, Nanoscience & Nanotechnology, Microporous material, ether-based electrolyte, 021001 nanoscience & nanotechnology, 0104 chemical sciences, Anode, Amorphous solid, carbon anode, Chemical engineering, chemistry, oxygenated functionalities, Chemical Sciences, sodium-ion batteries, 0210 nano-technology
الوصف: The pursuit of a high-capacity anode material has been urgently required for commercializing sodium-ion batteries with a high energy density and an improved working safety. In the absence of thermodynamically stable sodium intercalated compounds with graphite, constructing nanostructures with expanded interlayer distances is still the mainstream option for developing high-performance carbonaceous anodes. In this regard, a surface-functionalized and pore-forming strategy through a facile CO2 thermal etching route was rationally adopted to engineer negligible oxygenated functionalities on commercial carbon for boosting the sodium storage process. Benefitted from the abundant ionic/electronic pathways and more active reaction sites in the microporous structure with noticeable pseudocapacitive behaviors, the functionalized porous carbon could achieve a highly reversible capacity of 505 mA h g-1 at 50 mA g-1, an excellent rate performance of 181 mA h g-1 at 16,000 mA g-1, and an exceptional rate cycle stability of 176 mA h g-1 at 3200 mA g-1 over 1000 cycles. These outstanding electrochemical properties should be ascribed to a synergistic mechanism, fully utilizing the graphitic and amorphous structures for synchronous intercalations of sodium ions and solvated sodium ion compounds, respectively. Additionally, the controllable generation and evolution of a robust but thin solid electrolyte interphase film with the emergence of obvious capacitive reactions on the defective surface, favoring the rapid migration of sodium ions and solvated species, also contribute to a remarkable electrochemical performance of this porous carbon black.
وصف الملف: application/pdf
تدمد: 1944-8252
الوصول الحر: https://explore.openaire.eu/search/publication?articleId=doi_dedup___::9f1eb40662b0257c1e6ee16568c6d632Test
https://pubmed.ncbi.nlm.nih.gov/32701256Test
حقوق: OPEN
رقم الانضمام: edsair.doi.dedup.....9f1eb40662b0257c1e6ee16568c6d632
قاعدة البيانات: OpenAIRE