Silicon monoxide (SiO), which exhibits better cyclability compared to silicon while delivering higher capacity than that of graphite, is an adequate material for the development of lithium-ion batteries (LIBs) having higher energy densities. However, incorporating silicon-based materials including SiO into stable graphite anode inevitably degrades not only cycle life but also calendar life of LIBs, while little is known about their aging mechanisms. Here, SiO-induced thermal instability of the graphite/SiO composite anode is investigated. We reveal that under thermal exposure, SiO accelerates the loss of lithium inventory and concomitantly facilitates the lithium de-intercalation from graphite. This self-discharge phenomenon, which is weakly observed in the graphite anode without SiO, is the result of preferential parasitic reaction on the SiO interface and spontaneous electron and lithium-ion migration to equilibrate the electron energy imbalance between graphite and SiO. Understanding this underlying electron-level interplay between graphite and SiO in the composite anode will contribute toward improving shelf life of SiO-containing LIBs in actual operating conditions.
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http://dx.doi.org/10.1038/s41467-022-35769-2 | DOI Listing |
ChemSusChem
December 2024
Department of Chemistry, Indian Institute of Science Education and Research (IISER), Tirupati, 517619, India.
Hybrid supercapacitors such as Lithium-ion capacitors (LICs) are one of the most modern energy storage devices of great research interest. The hybridization of the battery-type anode with the capacitive-type cathode brings out the synergic effect of enhanced energy density, power capability, long cycle life, and wide operating temperature. Herein, we introduce a simultaneous alloying-intercalation process from the recovered graphite: silicon monoxide (RG: SiO) composite as a negative electrode for the LIC applications with the activated carbon (AC) as a counter electrode.
View Article and Find Full Text PDFBiosens Bioelectron
February 2025
Department of Biomedical Engineering, The Hong Kong Polytechnic University, Hong Kong, 999077, China; Joint Research Center of Biosensing and Precision Theranostics, The Hong Kong Polytechnic University, Kowloon, Hong Kong, 999077, China. Electronic address:
In this study, a CRISPR-Cas12a-mediated dual-mode upconversion luminescence/colorimetric nucleic acid biosensing platform is developed based on UCNP@SiO/CeO (UNSC) nanozyme. Here, UNSC is conjugated with single-stranded DNA (ssDNA) probes used as both peroxidase-like nanozyme and upconversion luminescence donors. When no target nucleic acid is present, ssDNA-conjugated UNSC attaches on magnetic graphene oxide (MGO) via pi-pi stacking force, resulting in upconversion luminescence quenching (OFF) and no color change after magnetic removal of nanozymes attached on the MGO.
View Article and Find Full Text PDFDalton Trans
November 2024
Department of Ceramic Engineering, National Institute of Technology, Rourkela, Odisha, 769008, India.
This work integrates a unique porous carbon with a binary heterostructured NiFeO/CuWO composite to enhance electrocatalytic activity towards the oxygen evolution reaction. The NiFeO/CuWO binary heterostructure was prepared through the conventional co-precipitation method. The porous carbon with turbostratic order was obtained by the selective etching of SiO nanodomains from preceramic polymer-derived SiOC.
View Article and Find Full Text PDFAdv Mater
November 2024
Collaborative Innovation Center of Suzhou Nano Science and Technology, College of Energy, Soochow University, Suzhou, 215006, China.
With the growing demand for high-voltage and wide-temperature range applications of lithium-ion batteries (LIBs), the requirements for electrolytes have become increasingly stringent. While fluorination engineering has enhanced the performance of traditional solvent systems, it has also raised concerns regarding cost, environmental hazards, and low reduction stability. Through strategic molecular bond design, a novel class of low-temperature (LT) solvents-siloxanes-is identified, meeting the demands of LT and high-voltage applications in LIBs.
View Article and Find Full Text PDFChemSusChem
October 2024
College of Biomass Science and Engineering, Sichuan University, Chengdu, 610065, China.
Selective hydrogenation of lignin-derived phenolic compounds is an essential process for developing the sustainable chemical industry and reducing dependence on nonrenewable resources. Herein, a composite C-SiO material (DGC) was prepared via the stepwise pyrolysis and steam activation of the distiller's grains, a fermentation solid waste from the Chinese liquor industry. After Ru loading, Ru/DGC was used for the catalytic hydrogenation of phenol to cyclohexanol.
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