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Journal ArticleDOI

Controlling cation segregation in perovskite-based electrodes for high electro-catalytic activity and durability

TLDR
An overview of the recent progress made in this area is presented, highlighting the thermodynamic driving forces, kinetics, and various configurations of surface enrichment and segregation in several widely studied perovskite-based material systems.
Abstract
Solid oxide cell (SOC) based energy conversion systems have the potential to become the cleanest and most efficient systems for reversible conversion between electricity and chemical fuels due to their high efficiency, low emission, and excellent fuel flexibility. Broad implementation of this technology is however hindered by the lack of high-performance electrode materials. While many perovskite-based materials have shown remarkable promise as electrodes for SOCs, cation enrichment or segregation near the surface or interfaces is often observed, which greatly impacts not only electrode kinetics but also their durability and operational lifespan. Since the chemical and structural variations associated with surface enrichment or segregation are typically confined to the nanoscale, advanced experimental and computational tools are required to probe the detailed composition, structure, and nanostructure of these near-surface regions in real time with high spatial and temporal resolutions. In this review article, an overview of the recent progress made in this area is presented, highlighting the thermodynamic driving forces, kinetics, and various configurations of surface enrichment and segregation in several widely studied perovskite-based material systems. A profound understanding of the correlation between the surface nanostructure and the electro-catalytic activity and stability of the electrodes is then emphasized, which is vital to achieving the rational design of more efficient SOC electrode materials with excellent durability. Furthermore, the methodology and mechanistic understanding of the surface processes are applicable to other materials systems in a wide range of applications, including thermo-chemical photo-assisted splitting of H2O/CO2 and metal–air batteries.

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Journal ArticleDOI

Single-atom catalysis in advanced oxidation processes for environmental remediation.

TL;DR: In this paper, the authors highlight the synthetic strategies, characterisation, and computation of carbon-based SACs, and for the first time, showcase their innovative applications in advanced oxidation processes.
Journal ArticleDOI

Nanomaterials and technologies for low temperature solid oxide fuel cells : Recent advances, challenges and opportunities

TL;DR: Solid oxide fuel cells (SOFCs) show considerable promise for meeting the current ever-increasing energy demand and environmental sustainability requirements because of their high efficiency, low energy consumption, and low power consumption.
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Anionic defect engineering of transition metal oxides for oxygen reduction and evolution reactions

TL;DR: In this article, a review of recent progress in manipulating the anion defects in transition metal oxides for enhancing their activity and stability is summarized and the proposed mechanisms for enhanced performance are discussed in detail.
Journal ArticleDOI

Recent Advances in Novel Nanostructuring Methods of Perovskite Electrocatalysts for Energy-Related Applications

TL;DR: A comprehensive overview of recent progress in the nanostructuring of perovskites for catalyzing several key reactions in metal-air batteries, water splitting, and solid oxide fuel cells is provided in this paper.
Journal ArticleDOI

Surface Reorganization on Electrochemically‐Induced Zn‐Ni‐Co Spinel Oxides for Enhanced Oxygen Electrocatalysis

TL;DR: The atomic-level insight into the new catalyst activation strategy based on Zn vacancies is adaptable for developing dual-functional Zn-contained spinel electrocatalysts and could elucidate the experimentally observed enhancement in the ORR activity of ZnXNi1-XCo2O4 oxides after the OER test.
References
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Journal ArticleDOI

Electrical Energy Storage for the Grid: A Battery of Choices

TL;DR: The battery systems reviewed here include sodium-sulfur batteries that are commercially available for grid applications, redox-flow batteries that offer low cost, and lithium-ion batteries whose development for commercial electronics and electric vehicles is being applied to grid storage.
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Opportunities and challenges for a sustainable energy future

TL;DR: This Perspective provides a snapshot of the current energy landscape and discusses several research and development opportunities and pathways that could lead to a prosperous, sustainable and secure energy future for the world.
Journal ArticleDOI

Powering the planet: Chemical challenges in solar energy utilization

TL;DR: Solar energy is by far the largest exploitable resource, providing more energy in 1 hour to the earth than all of the energy consumed by humans in an entire year, and if solar energy is to be a major primary energy source, it must be stored and dispatched on demand to the end user.
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Alternative energy technologies

TL;DR: Fossil fuels currently supply most of the world's energy needs, and however unacceptable their long-term consequences, the supplies are likely to remain adequate for the next few generations.
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A perovskite oxide optimized for oxygen evolution catalysis from molecular orbital principles.

TL;DR: The high activity of BSCF was predicted from a design principle established by systematic examination of more than 10 transition metal oxides, which showed that the intrinsic OER activity exhibits a volcano-shaped dependence on the occupancy of the 3d electron with an eg symmetry of surface transition metal cations in an oxide.
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