98%
921
2 minutes
20
P3-layered transition oxide cathodes have garnered considerable attention owing to their high initial capacity, rapid Na kinetics, and less energy consumption during the synthesis process. Despite these merits, their practical application is hindered by the substantial capacity degradation resulting from unfavorable structural transformations, Mn dissolution and migration. In this study, we systematically investigated the failure mechanisms of P3 cathodes, encompassing Mn dissolution, migration, and the irreversible P3-O3' phase transition, culminating in severe structural collapse. To address these challenges, we proposed an interfacial spinel local interlocking strategy utilizing P3/spinel intergrowth oxide as a proof-of-concept material. As a result, P3/spinel intergrowth oxide cathodes demonstrated enhanced cycling performance. The effectiveness of suppressing Mn migration and maintaining local structure of interfacial spinel local interlocking strategy was validated through depth-etching X-ray photoelectron spectroscopy, X-ray absorption spectroscopy, and in situ synchrotron-based X-ray diffraction. This interfacial spinel local interlocking engineering strategy presents a promising avenue for the development of advanced cathode materials for sodium-ion batteries.
Download full-text PDF |
Source |
---|---|
http://dx.doi.org/10.1021/acsnano.4c00966 | DOI Listing |
Small Methods
September 2025
Department of Chemistry, National Central University, Jhong-Li, 32001, Taiwan (ROC).
A new, readily accessible inorganic hole transporting material (HTM), Cu doped SnCoO (Cu-SCO), is developed for inverted tin-perovskite solar modules (TPSMs). To overcome the intrinsic defect of inorganic solid-state material Cu-SCO and potential interfacial incompatibility with TPsk, an amphiphilic neutral donor-acceptor copolymer (PTSN) is rationally designed as a surface/interface modification agent. TPSMs based on Cu doped SnCoO HTLs integrated with PTSN surface/interface modification achieved the highest conversion efficiency of 10.
View Article and Find Full Text PDFRSC Adv
August 2025
Hubei Provincial Key Laboratory of Green Materials for Light Industry, Collaborative Innovation Center of Green Light-Weight Materials and Processing, School of Materials and Chemical Engineering, Hubei University of Technology Wuhan 430068 China
In this study, TiO@CoO microspheres with a core-shell structure are successfully synthesized a homogeneous precipitation method. The composition, structure, and micro-morphology of the prepared microspheres are systematically characterized. The results confirm that spinel CoO uniformly coats the surface of anatase TiO microspheres, forming a lychee-like morphology with excellent dispersibility.
View Article and Find Full Text PDFEnviron Res
August 2025
Department of Physics and Oxide Research Center, Hankuk University of Foreign Studies, Yongin, 17035, Republic of Korea. Electronic address:
Antibiotic pollutants in water pose severe threats to ecosystems and human health, necessitating efficient remediation strategies. Sn-Fe bimetallic oxides, composed of earth-abundant and low-toxicity elements, offer an environmentally friendly catalytic approach for sustainable pollutant degradation. In this study, four Sn-Fe bimetallic oxide catalysts (Fe-SnO(OH), FeSnO(OH), SnFeO, and Sn-FeO) were synthesized via a hydrothermal method by adjusting the amount of NaOH.
View Article and Find Full Text PDFNano Lett
August 2025
Department of Physics and Astronomy, University of Nebraska, Lincoln, Nebraska 68588, United States.
The atomic structures at epitaxial film-substrate interfaces determine the scalability of thin films and can result in new phenomena. However, it is challenging to control the structure of the interface. In this work, we report the strong tunability of the epitaxial interface of improper ferroelectric hexagonal ferrites deposited on spinel ferrites, achieving the artificial selection of two types of interfaces that are related by a 90° rotation of in-plane epitaxial relations and feature either disordered or hybrid reconstruction.
View Article and Find Full Text PDFNano Lett
August 2025
Instituto de Investigaciones Fisicoquímicas Teóricas y Aplicadas, Universidad Nacional de La Plata-CONICET, Diagonal 113 y 64 S/N, La Plata 1900, Argentina.
Spinel ferrite nanoparticles (NPs) with controlled composition, size, and morphology have offered a wide range of functional properties, but engineering nonhomogeneous composition profiles remains elusive. Here, we use FeO/CoFeO core/shell NPs as precursors to prepare compositionally graded NPs via controlled interfacial diffusion of metal cations. Electron-microscopy-based elemental mapping reveals that thermal annealing above 200 °C in an oxygen-rich atmosphere transforms the initially sharp core/shell interface into a compositionally graded spinel structure with a Co-rich outer layer.
View Article and Find Full Text PDF