Every reference with a DOI in the deposited reference list resolved to a known
work in Crossref or DataCite at the dated check, and none carried a retraction,
withdrawal, or removal notice.
The 61 checked references that resolve
resolves10.1039/C8TA01627EResearch progress on vanadium-based cathode materials for sodium ion batteries
resolves10.1039/C7TA00880ECopper-substituted Na
<sub>0.67</sub>
Ni
<sub>0.3−x</sub>
Cu
<sub>x</sub>
Mn
<sub>0.7</sub>
O
<sub>2</sub>
cathode materials for sodium-ion batteries with suppressed P2–O2 phase transition
resolves10.1016/j.jechem.2017.02.008Metal–organic framework derived hierarchical porous TiO 2 nanopills as a super stable anode for Na-ion batteries
resolves10.1002/advs.201700146Recent Progress in Graphite Intercalation Compounds for Rechargeable Metal (Li, Na, K, Al)‐Ion Batteries
resolves10.1007/s40820-017-0172-2Growth of SnO2 Nanoflowers on N-doped Carbon Nanofibers as Anode for Li- and Na-ion Batteries
resolves10.1016/j.nanoen.2018.01.001Flexible ReS2 nanosheets/N-doped carbon nanofibers-based paper as a universal anode for alkali (Li, Na, K) ion battery
resolves10.1016/j.ensm.2018.03.011Three-dimensional carbon frameworks enabling MoS2 as anode for dual ion batteries with superior sodium storage properties
resolves10.1002/smtd.201700156Atomically Thin Transition‐Metal Dichalcogenides for Electrocatalysis and Energy Storage
resolves10.1021/acsami.7b00248Facile Synthesis of a MoS<sub>2</sub> and Functionalized Graphene Heterostructure for Enhanced Lithium-Storage Performance
resolves10.1021/am301055zSynthesis of MoS<sub>2</sub>–C One-Dimensional Nanostructures with Improved Lithium Storage Properties
resolves10.20964/2017.06.72Enhanced Lithium Storage Properties of Hierarchical MoS2-rGO Nanosheets
resolves10.1007/s12274-016-1410-5Size-controlled MoS2 nanodots supported on reduced graphene oxide for hydrogen evolution reaction and sodium-ion batteries
resolves10.1021/nn506850e2D Space-Confined Synthesis of Few-Layer MoS<sub>2</sub> Anchored on Carbon Nanosheet for Lithium-Ion Battery Anode
resolves10.1021/nn406156bMoS<sub>2</sub>/Graphene Composite Paper for Sodium-Ion Battery Electrodes
resolves10.1002/smll.201600043Synthesis of MoS<sub>2</sub>
@C Nanotubes Via the Kirkendall Effect with Enhanced Electrochemical Performance for Lithium Ion and Sodium Ion Batteries
resolves10.1038/srep09254Flexible Membranes of MoS2/C Nanofibers by Electrospinning as Binder-Free Anodes for High-Performance Sodium-Ion Batteries
resolves10.1002/smll.201401286Core–Shell Structure of Hierarchical Quasi‐Hollow MoS<sub>2</sub> Microspheres Encapsulated Porous Carbon as Stable Anode for Li‐Ion Batteries
resolves10.1038/ncomms15113Electrochemical generation of sulfur vacancies in the basal plane of MoS2 for hydrogen evolution
resolves10.1039/C7EE01047HElectrocatalysis of polysulfide conversion by sulfur-deficient MoS
<sub>2</sub>
nanoflakes for lithium–sulfur batteries
resolves10.1039/C8TA02416BTernary doped porous carbon nanofibers with excellent ORR and OER performance for zinc–air batteries
resolves10.1002/aenm.201702524Tunable and Efficient Tin Modified Nitrogen‐Doped Carbon Nanofibers for Electrochemical Reduction of Aqueous Carbon Dioxide
resolves10.1002/smll.201800737Nitrogen, Fluorine, and Boron Ternary Doped Carbon Fibers as Cathode Electrocatalysts for Zinc–Air Batteries
resolves10.1016/j.electacta.2013.10.098Construction of 3D flower-like MoS2 spheres with nanosheets as anode materials for high-performance lithium ion batteries
resolves10.1021/cm500347rSpace-Confined Growth of MoS<sub>2</sub> Nanosheets within Graphite: The Layered Hybrid of MoS<sub>2</sub> and Graphene as an Active Catalyst for Hydrogen Evolution Reaction
resolves10.1002/ange.201407898MoS<sub>2</sub> Nanoflowers with Expanded Interlayers as High‐Performance Anodes for Sodium‐Ion Batteries
resolves10.1021/am5061036Growth of Ultrathin MoS<sub>2</sub> Nanosheets with Expanded Spacing of (002) Plane on Carbon Nanotubes for High-Performance Sodium-Ion Battery Anodes
resolves10.1016/j.cej.2015.10.016Synthesis and lithium storage properties of MoS2 nanoparticles prepared using supercritical ethanol
resolves10.1039/c3ra42072hEffect of sulphur vacancy on geometric and electronic structure of MoS2 induced by molecular hydrogen treatment at room temperature
resolves10.1002/adfm.201601338MoS<sub>2</sub> Nanosheets with Widened Interlayer Spacing for High‐Efficiency Removal of Mercury in Aquatic Systems
resolves10.1039/C7TA03497KMetallic 1T MoS
<sub>2</sub>
nanosheet arrays vertically grown on activated carbon fiber cloth for enhanced Li-ion storage performance
resolves10.1002/smll.201501822Gram-Scale Aqueous Synthesis of Stable Few-Layered 1T-MoS<sub>2</sub>: Applications for Visible-Light-Driven Photocatalytic Hydrogen Evolution
resolves10.1039/C6RA12735EMechanically-induced reverse phase transformation of MoS
<sub>2</sub>
from stable 2H to metastable 1T and its memristive behavior
resolves10.1038/nmat4465Activating and optimizing MoS2 basal planes for hydrogen evolution through the formation of strained sulphur vacancies
resolves10.1021/acsami.5b09722MoS<sub>2</sub>–Gd Chelate Magnetic Nanomaterials with Core–Shell Structure Used as Contrast Agents in <i>in Vivo</i> Magnetic Resonance Imaging
resolves10.1016/j.carbon.2015.11.077Hydrothermal synthesis of layered molybdenum sulfide/N-doped graphene hybrid with enhanced supercapacitor performance
resolves10.1007/s12274-014-0606-9Chemically exfoliated metallic MoS2 nanosheets: A promising supporting co-catalyst for enhancing the photocatalytic performance of TiO2 nanocrystals
resolves10.1039/C5CC00803D2H → 1T phase transition and hydrogen evolution activity of MoS
<sub>2</sub>
, MoSe
<sub>2</sub>
, WS
<sub>2</sub>
and WSe
<sub>2</sub>
strongly depends on the MX
<sub>2</sub>
composition
resolves10.1002/adfm.201702998Freestanding Metallic 1T MoS<sub>2</sub> with Dual Ion Diffusion Paths as High Rate Anode for Sodium‐Ion Batteries
resolves10.1002/cnma.201700058CO<sub>2</sub>‐Assisted Solution‐Phase Selective Assembly of 2D WS<sub>2</sub>‐WO<sub>3</sub>⋅H<sub>2</sub>O and 1T‐2H MoS<sub>2</sub> to Desirable Complex Heterostructures
resolves10.1039/C5TA03911HNitrogen-doped carbon nanofibers with effectively encapsulated GeO
<sub>2</sub>
nanocrystals for highly reversible lithium storage
resolves10.1016/j.snb.2016.06.127Molybdenum nitride/nitrogen-doped multi-walled carbon nanotubes hybrid nanocomposites as novel electrochemical sensor for detection l-cysteine
resolves10.1039/C6TA05025EFormation of N-doped molybdenum carbide confined in hierarchical and hollow carbon nitride microspheres with enhanced sodium storage properties
resolves10.1039/C6NR04456ESize-tunable synthesis of monolayer MoS
<sub>2</sub>
nanoparticles and their applications in non-volatile memory devices
resolves10.1039/C7NR03690FFew-layered MoS
<sub>2</sub>
/C with expanding d-spacing as a high-performance anode for sodium-ion batteries
resolves10.1016/j.nanoen.2016.05.042Engineering sulfur vacancies and impurities in NiCo2S4 nanostructures toward optimal supercapacitive performance
resolves10.1039/C4RA14026EMoS
<sub>2</sub>
nanoflowers consisting of nanosheets with a controllable interlayer distance as high-performance lithium ion battery anodes
resolves10.1007/s12274-017-1847-1Enhanced sodium storage performance in flexible free-standing multichannel carbon nanofibers with enlarged interlayer spacing
resolves10.1016/j.ensm.2018.03.002Robust pseudo-capacitive Li-I2 battery enabled by catalytic, adsorptive N-doped graphene interlayer
resolves10.1039/C7TA11301COxygen-deficient anatase TiO
<sub>2</sub>
@C nanospindles with pseudocapacitive contribution for enhancing lithium storage
resolves10.1002/adfm.201404078MoS<sub>2</sub>/Graphene Composite Anodes with Enhanced Performance for Sodium‐Ion Batteries: The Role of the Two‐Dimensional Heterointerface
The 7 references without a DOI — listed, not checked
no DOI — not checked10.1016/j.electacta.2018.07.230_bib3
no DOI — not checked10.1016/j.electacta.2018.07.230_bib6
no DOI — not checked10.1016/j.electacta.2018.07.230_bib7
no DOI — not checked10.1016/j.electacta.2018.07.230_bib11
no DOI — not checked10.1016/j.electacta.2018.07.230_bib19
no DOI — not checked10.1016/j.electacta.2018.07.230_bib30
no DOI — not checked10.1016/j.electacta.2018.07.230_bib67
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