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2D few-layer iron phosphosulfide: a self-buffer heterophase structure induced by irreversible breakage of P–S bonds for high-performance lithium/sodium storage

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TLDR
In this paper, a few-layer FePS3 nanosheets uniformly anchored into a porous graphene network were used to achieve high performance lithium/sodium storage for metal phosphosulfide.
Abstract
To pursue an anode candidate with a high capacity and favorable potential is urgent for a prospective energy storage system. In this work, an earth-abundant ternary metal phosphosulfide, here FePS3, which is expected to combine the merits of metal sulfide and phosphorus, is explored for lithium/sodium storage. In order to facilitate charge transfer and relieve volume stress on the electrode, oriented nanoengineering with few-layer FePS3 nanosheets uniformly anchored into a porous graphene network was carried out. Consequently, excellent lithium storage capacities of 842.7 and 570 mA h g−1 were delivered after 120 cycles at 0.1 A g−1 and 1000 cycles at 1 A g−1, respectively. Moreover, the electrode showed excellent cycle stability for sodium storage, delivering a reversible capacity of 256.4 mA h g−1 after 300 cycles at 0.05 A g−1. The electrochemical performance is competitive compared with the state-of-the-art binary metal sulfides and phosphides. Besides oriented nanoengineering, more interestingly, an intrinsic phase evolution mechanism plays a substantial role in the favorable electrochemical reaction. Through characterization by ex situ XRD, FT-IR, HRTEM, and EIS studies, for lithium storage, single-phase FePS3 is irreversibly transformed into nano-sized FexSy and a phosphorus heterophase structure accompanying the breakage of P–S bonds after the first cycle. In view of the different lithiation potential, in situ formed mixed phases can serve as an inert buffer matrix for each other, alleviating the aggregation and pulverization of electrodes caused by volume change. This study proposes a synergistic pathway, which combines the advantages of oriented nanoengineering and an intrinsic phase evolution process to achieve high-performance lithium/sodium storage for metal phosphosulfide.

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CoPSe: A New Ternary Anode Material for Stable and High-Rate Sodium/Potassium-Ion Batteries.

TL;DR: In this paper, a single-phase ternary cobalt phosphoselenide (CoPSe) in the form of nanoparticles embedded in a layered metal-organic framework (MOF)-derived N-doped carbon matrix was used as an anode material for SIBs/PIBs.
Journal ArticleDOI

Electrocatalytic CO2 Reduction to Alcohols with High Selectivity over a Two-Dimensional Fe2P2S6 Nanosheet

TL;DR: In this article, a carbon-neutral cycle for CO2 conversion of CO2 into alcohols provides an attractive path toward achieving a carbon neutral cycle, while its efficiency is challenged by identifying active electrocatalysts.
Journal ArticleDOI

Large-scale Ni-MOF derived Ni3S2 nanocrystals embedded in N-doped porous carbon nanoparticles for high-rate Na+ storage

TL;DR: In this paper, the ultrasmall Ni3S2 nanocrystals embedded into N-doped porous carbon nanoparticles using the scalable Ni-MOF as precursor are used to develop the conversion-typed anode materials of sodium-ion batteries.
Journal ArticleDOI

Salt‐Templated Construction of Ultrathin Cobalt Doped Iron Thiophosphite Nanosheets toward Electrochemical Ammonia Synthesis

TL;DR: Being the first theoretical and experimental report regarding FePS3 -based electrocatalyst toward NRR, this work represents an important beginning to the family of metal thiophosphite as advanced electrocatalysts toward N RR.
References
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Journal ArticleDOI

Sodium-ion batteries: present and future

TL;DR: Current research on materials is summarized and discussed and future directions for SIBs are proposed to provide important insights into scientific and practical issues in the development of S IBs.
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Pseudocapacitive Na-Ion Storage Boosts High Rate and Areal Capacity of Self-Branched 2D Layered Metal Chalcogenide Nanoarrays

TL;DR: Improved extrinsic pseudocapacitive contribution is demonstrated as the origin of fast kinetics of an alloying-based SnS2 electrode and the S-edge effect on the fast Na+ migration and reversible and sensitive structure evolution during high-rate charge/discharge is verified.
Journal ArticleDOI

In‐Situ Formation of Hollow Hybrids Composed of Cobalt Sulfides Embedded within Porous Carbon Polyhedra/Carbon Nanotubes for High‐Performance Lithium‐Ion Batteries

TL;DR: 3D hollow hybrid composites with ultrafine cobalt sulfide nanoparticles uniformly embedded within the well-graphitized porous carbon polyhedra/carbon nanotubes framework are rationally fabricated using a green and one-step method involving the simultaneous pyrolysis and sulfidation of ZIF-67.
Journal ArticleDOI

Recent Developments on and Prospects for Electrode Materials with Hierarchical Structures for Lithium-Ion Batteries

TL;DR: In this article, a review summarizes the recent efforts on electrode materials with hierarchical structures, and discusses the effects of hierarchical structures on electrochemical performance in detail, including micro/nano and hetero/hierarchical structures characterized by ordered assembly of different sizes, phases, and/or pores.
Journal ArticleDOI

Sb@C coaxial nanotubes as a superior long-life and high-rate anode for sodium ion batteries

TL;DR: In this paper, a facile carbon-coating coupled with a thermal-reduction strategy has been developed to synthesize unique Sb@C coaxial nanotubes, which exhibit excellent sodium storage properties.
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