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=== Half-Cell Approach ===
=== Half-Cell Approach ===
The pseudo-open-circuit voltage (pseudo-OCV) method is a practical and widely used approach for characterizing the equilibrium potential of intercalation electrodes as a function of their state of charge. When implemented in half-cell configurations, the method enables direct observation of electrode potential under near-equilibrium conditions. These measurements are critical for building accurate, physics-based models of electrochemical systems.
The pseudo-open-circuit voltage (pseudo-OCV) method is a practical and widely used approach for characterizing the equilibrium potential of intercalation electrodes as a function of their state of charge. When implemented in half-cell configurations, the method observes the working electrode voltage versus a reference electrode under near-equilibrium conditions. These measurements are critical for building accurate, physics-based models of electrochemical systems.


==== Purpose and Advantages of Half-Cell Measurements ====
==== Purpose and Advantages of Half-Cell Measurements ====
Half-cell configurations allow the measurement of the open-circuit potential (OCP) of a single electrode without interference from the counter electrode. This is particularly important for model development, where accurate OCP–stoichiometry relationships are needed for each electrode independently.
Half-cell configurations allow the measurement of the open-circuit potential (OCP) of a single electrode without interference from the counter electrode. This is particularly important for model development, where accurate OCP–stoichiometry relationships are needed for each electrode independently. Full-cell measurements only provide access to the combined potential difference between two electrodes. This makes it mathematically impossible to resolve individual OCP curves without assumptions or external references—a limitation known as the "observability problem." Half-cell testing avoids this issue by providing direct access to the electrode under study.
 
Full-cell measurements only provide access to the combined potential difference between two electrodes. This makes it mathematically impossible to resolve individual OCP curves without strong assumptions or external references—a limitation known as the "observability problem." Half-cell testing avoids this issue entirely by providing direct access to the electrode under study.


This methodology supports model calibration, validation of new materials, and analysis of degradation mechanisms, and is applicable across a wide range of chemistries and formats.
This methodology supports model calibration, validation of new materials, and analysis of degradation mechanisms, and is applicable across a wide range of chemistries and formats.
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The pseudo-OCV method is suitable for both harvested and freshly fabricated electrodes. When applied to newly manufactured electrodes, it enables early-stage evaluation of electrochemical behavior, thermodynamic reversibility, and suitability for integration into devices.
The pseudo-OCV method is suitable for both harvested and freshly fabricated electrodes. When applied to newly manufactured electrodes, it enables early-stage evaluation of electrochemical behavior, thermodynamic reversibility, and suitability for integration into devices.


To ensure valid results, fresh electrodes should be adequately formed to stabilize their initial behavior. It may be that the pseudo-OCV protocol itself is sufficient to do formation or conditioning on some electrodes; further research on this topic is needed.  
To ensure valid results, fresh electrodes should be adequately formed to stabilize their initial behaviour. It may be that the pseudo-OCV protocol itself is sufficient to do formation or conditioning on some electrodes; further research on this topic is needed.  


==== Experimental Methodology ====
==== Experimental Methodology ====
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To analyze pseudo-OCV data and derive meaningful electrode models, a minimal set of metadata is required. This includes:
To analyze pseudo-OCV data and derive meaningful electrode models, a minimal set of metadata is required. This includes:


* mass loading of the active material  /  mg cm<sup>-2</sup>
* {{Template:Viewer/Link|page=Category:OSW1eeb0e2a229a43f1b197348d475067ff|url=|label=mass loading of the active material}} /  mg cm<sup>-2</sup>
* active facial electrode area  /  cm<sup>2</sup>
* active facial electrode area  /  cm<sup>2</sup>
* actual electrode coating thickness  /  µm
* {{Template:Viewer/Link|page=Category:OSW3b938708e7e44ac0a9599c04306302e7|url=|label=actual electrode coating thickness}} /  µm
* active material density  /  g cm<sup>-3</sup>
* {{Template:Viewer/Link|page=Category:OSW06448f648db643048b2ce785dba82044|url=|label=active material density}} /  g cm<sup>-3</sup>


The test temperature must also be recorded, as electrode potentials are typically temperature dependent. If the electrode is newly fabricated, its formation and cycling history should be documented to confirm stability and representative behavior.
The test temperature must also be recorded, as electrode potentials are typically temperature dependent. If the electrode is newly fabricated, its formation and cycling history should be documented to confirm stability and representative behaviour.

Latest revision as of 09:44, 3 April 2025

PseudoOpenCircuitVoltageMethod
ID OSW2abfbcad25e455a5b12fb5e4c9b50117
UUID 2abfbcad-25e4-55a5-b12f-b5e4c9b50117
Label PseudoOpenCircuitVoltageMethod
Machine compatible name PseudoOpenCircuitVoltageMethod
Statements (outgoing)
Statements (incoming)

Description

A technique used to measure the voltage of a cell under a low applied current as an estimate for the open-circuit voltage.

Category (Class)
OWL Class
Imported fromA prefixed IRI defining this entry as a imported term. In OSW the prefix must be a registered imported ontology.<br>Definition: OWL Class https://w3id.org/emmo/domain/characterisation-methodology/chameo#PseudoOpenCircuitVoltageMethod
EmmoClass
Supercategories<br>Definition: Category (Class), OWL Class, EmmoClass
Alternative label<br>Definition: EmmoClass
  • PseudoOCV [en]
  • metaclass<br>Definition: Category (Class), EmmoClass
  • EmmoClass
  • The pseudo-open-circuit voltage (pseudo-OCV) method is a practical approach for estimating the open-circuit potential (OCP) of intercalation electrodes, such as those in lithium-ion batteries. It enables the derivation of OCP versus stoichiometry functions from low-rate galvanostatic tests and is especially useful in the context of parameterizing physics-based battery models. This article outlines the method’s basis, implementation in half and full cells, and best practices for test protocols and data processing.

    Background

    In lithium-ion batteries, the open-circuit voltage (OCV) at the cell level is the difference between the OCPs of the positive and negative electrodes. The half-cell OCP function is a key parameter for physics-based battery models, such as the Doyle–Fuller–Newman (DFN) model, and critical for accurate state estimation and degradation modelling.

    Traditional methods to extract OCP include:

    • GITT (Galvanostatic Intermittent Titration Technique): accurate but time-consuming
    • Three-electrode-cell measurements: invasive and susceptible to artifacts
    • Relaxation-based methods: slow and affected by hysteresis

    The pseudo-OCV method approximates near-equilibrium voltages using slow constant-current cycling (typically C/30 or slower).

    Overview of the Method


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