Journal of Power Sources (journal-of-power-sources)
Journal positioning
Journal of Power Sources (Elsevier) is an archival venue for the science and
technology of electrochemical power devices: batteries, fuel cells, and
supercapacitors at the cell/electrode/electrolyte level — their engineering,
performance, degradation, and diagnostics. Its center of gravity is the device and
its electrochemistry: how an electrode, electrolyte, interface, or cell architecture
governs measured device behavior (capacity, rate, efficiency, cycle life, failure). A
paper that reports only a new active material's properties, with electrochemistry as an
afterthought, fits the materials family better; this journal rewards an advance you can
read in the cell's performance and diagnostics. 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 Journal of Power Sources Guide for
Authors on the Elsevier site.
When to trigger
- The author names Journal of Power Sources for a battery, fuel-cell, or supercapacitor
manuscript centered on cell/electrode/electrolyte engineering or diagnostics.
- A paper must be re-framed from "we made a material" into a device-and-electrochemistry
story tied to measured cell performance and degradation.
- The author is deciding between this device venue and the materials-mechanism venue
energy-storage-materials, or the systems venue applied-energy.
- The author needs the journal's cell-level performance and diagnostics rigor bar and
desk-reject heuristics.
Scope & topic fit
- Batteries: electrode and electrolyte engineering, cell design, performance, and
the electrochemistry governing rate, capacity, and efficiency at the device level.
- Degradation, aging, safety, and failure analysis: cycle-life, calendar aging,
thermal behavior, and post-mortem/operando diagnostics of cells.
- Fuel cells and electrolyzers: catalyst layers, membranes/electrolytes, and
cell/stack performance, durability, and water/thermal management.
- Supercapacitors and hybrid devices: electrode and electrolyte engineering with
device-level rate and energy/power characterization.
- Diagnostics and characterization methods (EIS, operando, modeling of cells) that
illuminate device behavior, performance, or degradation mechanisms.
- Cell-level modeling and battery-management-relevant analysis tied to measured devices.
Method & evidence bar
- The central claim is a device/electrochemistry advance: the contribution must be
legible in cell-level metrics under clearly stated, realistic protocols, not only in
material characterization.
- Electrochemical testing must report mass/areal loading, current density (C-rate or
mA cm⁻²), voltage window, electrolyte, and cell configuration; half-cell vs. full-cell
context must be honest.
- Performance must be benchmarked against credible device-level state-of-the-art under
comparable conditions; capacity/rate claims at trivial loadings are weak.
- Degradation/diagnostics claims require sufficient cycling/aging duration and a
mechanism supported by operando or post-mortem evidence, not a single fade curve.
- Reproducibility: report cell-build details, number of cells, and statistics; safety-
relevant claims need appropriate characterization.
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 device/electrochemistry gap and the performance or
degradation problem; the discussion ties electrode/electrolyte/interface variables to
measured cell behavior.
- Figures are load-bearing: rate and cycling data at stated loadings, voltage profiles,
EIS/operando diagnostics, and post-mortem analysis with controls.
- Supporting information carries full cell-build and testing protocols and extended
electrochemical data; main-text figures must support the device claim 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 Journal of Power Sources Guide for Authors page you checked.
- Search the live site for "Journal of Power Sources guide for authors" and follow the
current Elsevier/Editorial Manager version.
- Re-check article types, highlights and graphical-abstract requirements, and
electrochemical-reporting conventions (loadings, current densities, cell type).
- Confirm data-availability and any expectation to report full cell-build and cycling
protocols for reproducibility.
- 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
- Material-only study with token electrochemistry and no device-level contribution.
- Capacity/rate claims at trivial mass/areal loadings or with undisclosed test conditions.
- Half-cell results presented as if they were full-cell device performance.
- Single fade curve offered as degradation analysis with no mechanism or operando/post-mortem evidence.
- Performance benchmarked against a strawman or under non-comparable protocols.
- Pure materials-synthesis or pure mechanism paper better suited to a materials venue.
Re-routing decision
- Electrode/electrolyte materials and structure–property mechanism as the core →
energy-storage-materials.
- Systems-level energy integration / techno-economic scope →
applied-energy.
- Membrane/electrolyte transport mechanism as the central science →
journal-of-membrane-science.
- Applied electrocatalysis as a process/material advance →
chemical-engineering-journal.
- Highest-profile energy-device breakthrough →
nature-energy or joule (different selectivity/format; re-check).
Output format
[Fit] High / Medium / Low (one-line reason)
[Target] Journal of Power Sources
[Topic tags] <2–3 closest device subtopics (battery/fuel-cell/supercapacitor)>
[Device advance] <the cell/electrode/electrolyte advance read in device metrics, one line>
[Test conditions] <loading / current density / cell type / window stated?>
[Diagnostics/degradation] <duration + operando/post-mortem mechanism present?>
[Top risk] <the single most likely reason for rejection>
[Official items to re-check] <article type / highlights / electrochemical-reporting / data policy / disclosures>
[Re-route suggestion] <if material/system-level, a better-matched venue>
1---2name: journal-of-power-sources3description: Use when targeting Journal of Power Sources or deciding whether an electrochemical-power-device manuscript fits this venue. Encodes the journal's fit, the device-and-electrochemistry contribution bar, cell-level performance and diagnostics rigor, house style, the device-vs-materials routing, official-submission re-check, and desk-reject heuristics.4---56# Journal of Power Sources (journal-of-power-sources)78## Journal positioning910Journal of Power Sources (Elsevier) is an archival venue for the **science and11technology of electrochemical power devices**: batteries, fuel cells, and12supercapacitors at the cell/electrode/electrolyte level — their engineering,13performance, degradation, and diagnostics. Its center of gravity is the **device and14its electrochemistry**: how an electrode, electrolyte, interface, or cell architecture15governs measured device behavior (capacity, rate, efficiency, cycle life, failure). A16paper that reports only a new active material's properties, with electrochemistry as an17afterthought, fits the materials family better; this journal rewards an advance you can18read in the cell's performance and diagnostics. This skill is a **fit / venue-selection19/ re-framing** tool. It does not replace the journal's current official author20guidelines. Before submitting, re-check the live Journal of Power Sources Guide for21Authors on the Elsevier site.2223## When to trigger2425- The author names Journal of Power Sources for a battery, fuel-cell, or supercapacitor26 manuscript centered on cell/electrode/electrolyte engineering or diagnostics.27- A paper must be re-framed from "we made a material" into a device-and-electrochemistry28 story tied to measured cell performance and degradation.29- The author is deciding between this device venue and the materials-mechanism venue30 `energy-storage-materials`, or the systems venue `applied-energy`.31- The author needs the journal's cell-level performance and diagnostics rigor bar and32 desk-reject heuristics.3334## Scope & topic fit3536- Batteries: electrode and electrolyte engineering, cell design, performance, and37 the electrochemistry governing rate, capacity, and efficiency at the device level.38- Degradation, aging, safety, and failure analysis: cycle-life, calendar aging,39 thermal behavior, and post-mortem/operando diagnostics of cells.40- Fuel cells and electrolyzers: catalyst layers, membranes/electrolytes, and41 cell/stack performance, durability, and water/thermal management.42- Supercapacitors and hybrid devices: electrode and electrolyte engineering with43 device-level rate and energy/power characterization.44- Diagnostics and characterization methods (EIS, operando, modeling of cells) that45 illuminate device behavior, performance, or degradation mechanisms.46- Cell-level modeling and battery-management-relevant analysis tied to measured devices.4748## Method & evidence bar4950- The central claim is a **device/electrochemistry advance**: the contribution must be51 legible in cell-level metrics under clearly stated, realistic protocols, not only in52 material characterization.53- Electrochemical testing must report mass/areal loading, current density (C-rate or54 mA cm⁻²), voltage window, electrolyte, and cell configuration; half-cell vs. full-cell55 context must be honest.56- Performance must be benchmarked against credible device-level state-of-the-art under57 comparable conditions; capacity/rate claims at trivial loadings are weak.58- Degradation/diagnostics claims require sufficient cycling/aging duration and a59 mechanism supported by operando or post-mortem evidence, not a single fade curve.60- Reproducibility: report cell-build details, number of cells, and statistics; safety-61 relevant claims need appropriate characterization.6263## Structure & house style6465- Standard research-article structure (introduction, experimental, results,66 discussion); the journal uses highlights and a graphical abstract — re-check current67 article types and requirements on the live guide.68- The introduction frames the device/electrochemistry gap and the performance or69 degradation problem; the discussion ties electrode/electrolyte/interface variables to70 measured cell behavior.71- Figures are load-bearing: rate and cycling data at stated loadings, voltage profiles,72 EIS/operando diagnostics, and post-mortem analysis with controls.73- Supporting information carries full cell-build and testing protocols and extended74 electrochemical data; main-text figures must support the device claim on their own.7576## Official-submission checklist7778- Before giving submission-ready advice, read `../../resources/source-basis.md` and79 `../../resources/official-source-map.md`; start from the Elsevier anchors, then cite80 the current Journal of Power Sources Guide for Authors page you checked.81- Search the live site for "Journal of Power Sources guide for authors" and follow the82 current Elsevier/Editorial Manager version.83- Re-check article types, highlights and graphical-abstract requirements, and84 electrochemical-reporting conventions (loadings, current densities, cell type).85- Confirm data-availability and any expectation to report full cell-build and cycling86 protocols for reproducibility.87- Re-check competing-interests, funding, author-contribution (CRediT), and AI-use88 disclosure requirements.89- If the live official instructions conflict with this skill, the official90 instructions win.9192## Pre-submission self-check9394- [ ] The advance is legible in cell-level performance/degradation, not only in material characterization.95- [ ] Loading, current density, voltage window, electrolyte, and cell configuration are reported; half- vs full-cell context is honest.96- [ ] Performance is benchmarked against device-level state-of-the-art under comparable conditions, at realistic loadings.97- [ ] Degradation/diagnostics claims have sufficient duration and operando/post-mortem mechanism evidence.98- [ ] Cell-build details, number of cells, and statistics are reported for reproducibility.99- [ ] Highlights and graphical abstract represent the device/electrochemistry advance.100101## Common desk-reject triggers102103- Material-only study with token electrochemistry and no device-level contribution.104- Capacity/rate claims at trivial mass/areal loadings or with undisclosed test conditions.105- Half-cell results presented as if they were full-cell device performance.106- Single fade curve offered as degradation analysis with no mechanism or operando/post-mortem evidence.107- Performance benchmarked against a strawman or under non-comparable protocols.108- Pure materials-synthesis or pure mechanism paper better suited to a materials venue.109110## Re-routing decision111112- Electrode/electrolyte materials and structure–property mechanism as the core → `energy-storage-materials`.113- Systems-level energy integration / techno-economic scope → `applied-energy`.114- Membrane/electrolyte transport mechanism as the central science → `journal-of-membrane-science`.115- Applied electrocatalysis as a process/material advance → `chemical-engineering-journal`.116- Highest-profile energy-device breakthrough → `nature-energy` or `joule` (different selectivity/format; re-check).117118## Output format119120```text121[Fit] High / Medium / Low (one-line reason)122[Target] Journal of Power Sources123[Topic tags] <2–3 closest device subtopics (battery/fuel-cell/supercapacitor)>124[Device advance] <the cell/electrode/electrolyte advance read in device metrics, one line>125[Test conditions] <loading / current density / cell type / window stated?>126[Diagnostics/degradation] <duration + operando/post-mortem mechanism present?>127[Top risk] <the single most likely reason for rejection>128[Official items to re-check] <article type / highlights / electrochemical-reporting / data policy / disclosures>129[Re-route suggestion] <if material/system-level, a better-matched venue>130```