Energy Storage Materials (energy-storage-materials)
Journal positioning
Energy Storage Materials (Elsevier) is an archival venue for materials for
electrochemical energy storage: electrode and electrolyte materials and their
structure–property–performance relationships and mechanisms for batteries and
supercapacitors. Its center of gravity is the material and the mechanism — why a
composition, structure, or interface stores charge the way it does — established with
materials-level evidence and connected to electrochemical behavior. Where Journal of
Power Sources rewards an advance read in the cell, this journal rewards a materials
insight: a new storage mechanism, a structure–property law, or a mechanistic
explanation of capacity, kinetics, or stability. A device-engineering paper with no
new materials understanding, or a synthesis paper with a property number and no
mechanism, is a weak fit. This skill is a fit / venue-selection / re-framing tool.
It does not replace the journal's current official author guidelines. Before
submitting, re-check the live Energy Storage Materials Guide for Authors on the
Elsevier site.
When to trigger
- The author names Energy Storage Materials for an electrode/electrolyte-materials
manuscript centered on structure–property–performance or storage mechanism.
- A paper must be re-framed from "we synthesized a material and measured capacity" into
a structure–property–mechanism story for charge storage.
- The author is deciding between this materials-mechanism venue and the device venue
journal-of-power-sources, or a structural-materials venue.
- The author needs the journal's materials-characterization and mechanism rigor bar and
desk-reject heuristics.
Scope & topic fit
- Electrode materials: cathodes, anodes, and conversion/alloying/intercalation hosts,
with structure–property–performance relationships and storage mechanisms.
- Electrolytes and interfaces: liquid, solid-state, and quasi-solid electrolytes, SEI/CEI
formation, and ion-transport and interfacial mechanisms.
- Beyond-lithium and emerging chemistries (Na, K, multivalent, metal-anode, etc.) where
the materials-level mechanism is the advance.
- Materials for supercapacitors and hybrid storage where charge-storage mechanism and
structure–property links are central.
- Operando/in-situ and advanced characterization, and materials modeling, when they
resolve a storage mechanism or structure–property law.
- Design principles and structure–property relationships transferable across a
materials class, not a single composition.
Method & evidence bar
- The central claim is a structure–property–mechanism result: the materials origin
of capacity, rate, or stability, supported by direct evidence (operando/in-situ,
spectroscopy, diffraction, microscopy), not inferred from a capacity curve alone.
- Electrochemical data must be reported with loading, current density, voltage window,
and electrolyte, and connected to the materials mechanism; honest half-cell/full-cell
context is required.
- Mechanism must be ruled in by controlled materials variation and characterization, not
asserted from morphology–performance correlation.
- Performance claims must be benchmarked against the correct materials baseline under
comparable conditions; trivial-loading or cherry-picked-cycle results are weak.
- Characterization must be statistically representative with sampling reported, and
computation (DFT/MD) must be tied to or predictive of experiment.
Structure & house style
- Standard research-article structure (introduction, experimental, results,
discussion); the journal uses highlights and a graphical abstract — re-check current
article types and requirements on the live guide.
- The introduction frames the materials/mechanism gap (not the device target); the
discussion makes the structure–property–mechanism argument explicit and transferable.
- Figures are load-bearing: structure/characterization paired with electrochemistry,
operando/in-situ evidence, and mechanism schematics grounded in data.
- Supporting information carries full synthesis, extended characterization, and
computational details; main-text figures must support the mechanism on their own.
Official-submission checklist
- Before giving submission-ready advice, read
../../resources/source-basis.md and
../../resources/official-source-map.md; start from the Elsevier anchors, then cite
the current Energy Storage Materials Guide for Authors page you checked.
- Search the live site for "Energy Storage Materials guide for authors" and follow the
current Elsevier/Editorial Manager version.
- Re-check article types, highlights and graphical-abstract requirements, and
electrochemical/characterization reporting conventions.
- Confirm data-availability and any deposition requirements for crystallographic or
computational data.
- Re-check competing-interests, funding, author-contribution (CRediT), and AI-use
disclosure requirements.
- If the live official instructions conflict with this skill, the official
instructions win.
Pre-submission self-check
Common desk-reject triggers
- Synthesis-plus-capacity paper with a property number and no storage mechanism.
- Mechanism asserted from morphology–performance correlation with no operando/in-situ or controlled-variation evidence.
- Capacity/rate claims at trivial loadings, cherry-picked cycles, or undisclosed conditions.
- Incremental composition variant with marginal improvement and no transferable insight.
- Device-engineering paper with no new materials understanding (better suited to a device venue).
- Computation-only study with no experimental anchor or tested prediction.
Re-routing decision
- Cell/electrode/electrolyte engineering and diagnostics read in device metrics →
journal-of-power-sources.
- Systems-level energy integration / techno-economic scope →
applied-energy.
- Solid electrolyte/membrane transport as the central separation science →
journal-of-membrane-science.
- Structural-materials physical-metallurgy mechanism (non-storage) →
acta-materialia.
- Highest-profile energy-materials breakthrough →
nature-energy, joule, or nature-catalysis (different selectivity/format; re-check).
Output format
[Fit] High / Medium / Low (one-line reason)
[Target] Energy Storage Materials
[Topic tags] <2–3 closest materials subtopics (electrode/electrolyte/interface)>
[Mechanism] <the structure–property–mechanism claim for charge storage in one line>
[Evidence] <operando/in-situ + controlled-variation support present?>
[Performance] <materials-baseline benchmark + conditions stated?>
[Top risk] <the single most likely reason for rejection>
[Official items to re-check] <article type / highlights / characterization-reporting / data deposition / disclosures>
[Re-route suggestion] <if device/system-level, a better-matched venue>
Source: brycewang-stanford/Awesome-Journal-Skills → Engineering-Technology-Journal-Skills/skills/energy-storage-materials/SKILL.md
1---2name: energy-storage-materials3description: Use when targeting Energy Storage Materials or deciding whether an electrochemical-energy-storage materials manuscript fits this venue. Encodes the journal's fit, the materials-structure-property-mechanism bar, characterization rigor, house style, the materials-vs-device routing, official-submission re-check, and desk-reject heuristics.4---567# Energy Storage Materials (energy-storage-materials)89## Journal positioning1011Energy Storage Materials (Elsevier) is an archival venue for **materials for12electrochemical energy storage**: electrode and electrolyte materials and their13**structure–property–performance relationships and mechanisms** for batteries and14supercapacitors. Its center of gravity is the **material and the mechanism** — why a15composition, structure, or interface stores charge the way it does — established with16materials-level evidence and connected to electrochemical behavior. Where Journal of17Power Sources rewards an advance read in the cell, this journal rewards a materials18insight: a new storage mechanism, a structure–property law, or a mechanistic19explanation of capacity, kinetics, or stability. A device-engineering paper with no20new materials understanding, or a synthesis paper with a property number and no21mechanism, is a weak fit. This skill is a **fit / venue-selection / re-framing** tool.22It does not replace the journal's current official author guidelines. Before23submitting, re-check the live Energy Storage Materials Guide for Authors on the24Elsevier site.2526## When to trigger2728- The author names Energy Storage Materials for an electrode/electrolyte-materials29 manuscript centered on structure–property–performance or storage mechanism.30- A paper must be re-framed from "we synthesized a material and measured capacity" into31 a structure–property–mechanism story for charge storage.32- The author is deciding between this materials-mechanism venue and the device venue33 `journal-of-power-sources`, or a structural-materials venue.34- The author needs the journal's materials-characterization and mechanism rigor bar and35 desk-reject heuristics.3637## Scope & topic fit3839- Electrode materials: cathodes, anodes, and conversion/alloying/intercalation hosts,40 with structure–property–performance relationships and storage mechanisms.41- Electrolytes and interfaces: liquid, solid-state, and quasi-solid electrolytes, SEI/CEI42 formation, and ion-transport and interfacial mechanisms.43- Beyond-lithium and emerging chemistries (Na, K, multivalent, metal-anode, etc.) where44 the materials-level mechanism is the advance.45- Materials for supercapacitors and hybrid storage where charge-storage mechanism and46 structure–property links are central.47- Operando/in-situ and advanced characterization, and materials modeling, when they48 resolve a storage mechanism or structure–property law.49- Design principles and structure–property relationships transferable across a50 materials class, not a single composition.5152## Method & evidence bar5354- The central claim is a **structure–property–mechanism** result: the materials origin55 of capacity, rate, or stability, supported by direct evidence (operando/in-situ,56 spectroscopy, diffraction, microscopy), not inferred from a capacity curve alone.57- Electrochemical data must be reported with loading, current density, voltage window,58 and electrolyte, and connected to the materials mechanism; honest half-cell/full-cell59 context is required.60- Mechanism must be ruled in by controlled materials variation and characterization, not61 asserted from morphology–performance correlation.62- Performance claims must be benchmarked against the correct materials baseline under63 comparable conditions; trivial-loading or cherry-picked-cycle results are weak.64- Characterization must be statistically representative with sampling reported, and65 computation (DFT/MD) must be tied to or predictive of experiment.6667## Structure & house style6869- Standard research-article structure (introduction, experimental, results,70 discussion); the journal uses highlights and a graphical abstract — re-check current71 article types and requirements on the live guide.72- The introduction frames the materials/mechanism gap (not the device target); the73 discussion makes the structure–property–mechanism argument explicit and transferable.74- Figures are load-bearing: structure/characterization paired with electrochemistry,75 operando/in-situ evidence, and mechanism schematics grounded in data.76- Supporting information carries full synthesis, extended characterization, and77 computational details; main-text figures must support the mechanism on their own.7879## Official-submission checklist8081- Before giving submission-ready advice, read `../../resources/source-basis.md` and82 `../../resources/official-source-map.md`; start from the Elsevier anchors, then cite83 the current Energy Storage Materials Guide for Authors page you checked.84- Search the live site for "Energy Storage Materials guide for authors" and follow the85 current Elsevier/Editorial Manager version.86- Re-check article types, highlights and graphical-abstract requirements, and87 electrochemical/characterization reporting conventions.88- Confirm data-availability and any deposition requirements for crystallographic or89 computational data.90- Re-check competing-interests, funding, author-contribution (CRediT), and AI-use91 disclosure requirements.92- If the live official instructions conflict with this skill, the official93 instructions win.9495## Pre-submission self-check9697- [ ] The contribution is a structure–property–mechanism insight, not a synthesis-plus-capacity report.98- [ ] Mechanism is supported by operando/in-situ or controlled-variation evidence, not morphology–performance correlation.99- [ ] Electrochemical data include loading, current density, window, and electrolyte, tied to the materials mechanism.100- [ ] Performance is benchmarked against the correct materials baseline under comparable conditions.101- [ ] Characterization is statistically representative with sampling reported; any computation is tied to experiment.102- [ ] The mechanism/design principle is framed to transfer across a materials class.103104## Common desk-reject triggers105106- Synthesis-plus-capacity paper with a property number and no storage mechanism.107- Mechanism asserted from morphology–performance correlation with no operando/in-situ or controlled-variation evidence.108- Capacity/rate claims at trivial loadings, cherry-picked cycles, or undisclosed conditions.109- Incremental composition variant with marginal improvement and no transferable insight.110- Device-engineering paper with no new materials understanding (better suited to a device venue).111- Computation-only study with no experimental anchor or tested prediction.112113## Re-routing decision114115- Cell/electrode/electrolyte engineering and diagnostics read in device metrics → `journal-of-power-sources`.116- Systems-level energy integration / techno-economic scope → `applied-energy`.117- Solid electrolyte/membrane transport as the central separation science → `journal-of-membrane-science`.118- Structural-materials physical-metallurgy mechanism (non-storage) → `acta-materialia`.119- Highest-profile energy-materials breakthrough → `nature-energy`, `joule`, or `nature-catalysis` (different selectivity/format; re-check).120121## Output format122123```text124[Fit] High / Medium / Low (one-line reason)125[Target] Energy Storage Materials126[Topic tags] <2–3 closest materials subtopics (electrode/electrolyte/interface)>127[Mechanism] <the structure–property–mechanism claim for charge storage in one line>128[Evidence] <operando/in-situ + controlled-variation support present?>129[Performance] <materials-baseline benchmark + conditions stated?>130[Top risk] <the single most likely reason for rejection>131[Official items to re-check] <article type / highlights / characterization-reporting / data deposition / disclosures>132[Re-route suggestion] <if device/system-level, a better-matched venue>133```134135---136137**Source:** [`brycewang-stanford/Awesome-Journal-Skills`](https://github.com/brycewang-stanford/Awesome-Journal-Skills) → `Engineering-Technology-Journal-Skills/skills/energy-storage-materials/SKILL.md`