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TiO has drawn increasing research attention as negative electrode material in sodium ion battery because of its natural abundance, low cost, nontoxicity, and facile preparation. Despite tremendous studies carried out, the sodium storage mechanism is still under discussion, and the electronic and local structures of TiO during sodiation/desodiation process are not well understood either. Herein, we reported a mechanism study of graphene-supported oxygen-deficient anatase TiO nanotubes (nanowires) as the negative electrode material for sodium ion batteries. Different from the previous reports, the insertion/extraction of Na ions leads to almost no changes of titanium valence state but there is a charge redistribution of O 2p orbitals which alters the hybridization between O 2p and Ti 3d states, suggested by the combined electrochemical and X-ray spectroscopic study. Both the electronic and local structures of TiO during the reversible sodiation/desodiation process are revealed from the Ti L-edge and O K-edge spectra. This detailed study would shed light on the material design and structural optimization of TiO as energy storage material in different systems.
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http://dx.doi.org/10.1021/acsami.8b19288 | DOI Listing |
Small
September 2025
Soochow Institute for Energy and Materials Innovation, College of Energy, Key Laboratory of Advanced Carbon Materials and Wearable Energy Technologies of Jiangsu Province, Key Laboratory of Core Technology of High Specific Energy Battery and Key Materials for Petroleum and Chemical Industry, Soochow
Natural graphite, with its lower production cost, higher capacity, and superior electrical conductivity than artificial graphite, currently accounts for approximately 40% of the global lithium-ion battery anode market. However, the inadequate compatibility of natural graphite with commercial carbonate ester electrolytes leads to irreversible capacity loss, reduce coulombic efficiency, and rapid capacity decline during cycling. Applying an oxygen-deficient titanium dioxide (TiO) protective layer to natural graphite anodes has been noted as a successful method for improving their structural integrity and cycling stability; however, the fragile solid-electrolyte interphase (SEI) limits their fast-charging capability.
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July 2025
Centre for Nano and Soft Matter Sciences, Arkavathi Campus, Bengaluru, 562162, India.
Electrochromic smart windows (ECSWs) have yet to achieve widespread adoption, primarily due to the high cost associated with the exorbitant material used presently. In this study, we explore titanium dioxide (TiO), a more abundant and cost-effective alternative, as an electrochromic (EC) material with potential for enhanced performance. We address the issue of TiO's low coloration efficiency (CE) by introducing oxygen defects.
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September 2024
CNRS, Laboratoire de Chimie Théorique, LCT, Sorbonne Université, 4 Place Jussieu, F-75005 Paris, France.
Metal oxides (MOs) are key materials in many fields, including technological, industrial, and biomedical applications. In most of these implementations, surface reactivity and reducibility properties are critical considerations. In their nanosized form, MOs exhibit enhanced reactivity that is connected to toxicity.
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July 2024
The Education Ministry Key Lab of Resource Chemistry, Joint International Research Laboratory of Resource Chemistry of Ministry of Education, Shanghai Key Laboratory of Rare Earth Functional Materials, and Shanghai Frontiers Science Center of Biomimetic Catalysis, Shanghai Normal University, Shangha
Immunotherapy has emerged as a revolutionizing therapeutic modality for cancer. However, its efficacy has been largely limited by a weak immune response and an immunosuppressive tumor microenvironment. Herein, we report a metal-organic framework (MOF)-derived titanium oxide nanoparticle (MCT NP) as an immune booster that can greatly improve the immunotherapy efficacy by inducing "immunogenic cell death" (ICD) and remodeling the tumor microenvironment.
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September 2023
School of Materials Science & Engineering, the Key Laboratory of Advanced Ceramics and Machining Technology by the Ministry of Education of China, Tianjin University, Tianjin 300072, China.
Chronic osteomyelitis (COM), is a long-term, constant, and intractable disease mostly induced by infection from the invasion of () into bone cells. Here, we describe a highly effective microwave (MW) therapeutic strategy for -induced COM based on the growth of interfacial oxygen vacancy-rich molybdenum disulfide (MoS)/titanium carbide (TiCT) MXene with oxygen-deficient titanium dioxide (TiO) on TiCT (labeled as HU-MoS/TiCT) by producing reactive oxygen species (ROS) and heat. HU-MoS/TiCT produced heat and ROS, which could effectively treat -induced COM under MW irradiation.
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