Enhancing P2/O3 Biphasic Cathode Performance for Sodium‐Ion Batteries: A Metaheuristic Approach to Multi‐Element Doping Design

Author:

Paidi Anil K1ORCID,Park Woon Bae2,Paidi Vinod K3ORCID,Lee Jinhyeok4,Lee Kug‐Seung1ORCID,Ahn Hyungju1ORCID,Avdeev Maxim5,Chae Keun Hwa6,Pyo Myoungho2,Wu Junxiu7ORCID,Sohn Kee‐Sun4,Ahn Docheon1ORCID,Lu Jun7ORCID

Affiliation:

1. PLS‐II Beamline Department, Pohang Accelerator Laboratory POSTECH Pohang 37673 Republic of Korea

2. Department of Printed Electronics Engineering Sunchon National University Chonnam 57922 Republic of Korea

3. European Synchrotron Radiation Facility 71, Avenue des Martyrs Grenoble 38043 France

4. Faculty of Nanotechnology and Advanced Materials Engineering Sejong University Seoul 05006 Republic of Korea

5. Australian Nuclear Science and Technology Organization (ANSTO) New Illawarra Road, Lucas Heights New South Wales 2234 Australia

6. Advanced Analysis Center Korea Institute of Science and Technology 5 Hwarang‐ro 14‐gil Seongbuk‐gu Seoul 02792 Republic of Korea

7. College of Chemical and Biological Engineering Zhejiang University Hangzhou Zhejiang 310027 China

Abstract

AbstractSodium‐ion batteries (SIBs) have emerged as a compelling alternative to lithium‐ion batteries (LIBs), exhibiting comparable electrochemical performance while capitalizing on the abundant availability of sodium resources. In SIBs, P2/O3 biphasic cathodes, despite their high energy, require furthur improvements in stability to meet current energy demands. This study introduces a systematic methodology that leverages the meta‐heuristically assisted NSGA‐II algorithm to optimize multi‐element doping in electrode materials, aiming to transcend conventional trial‐and‐error methods and enhance cathode capacity by the synergistic integration of P2 and O3 phases. A comprehensive phase analysis of the meta‐heuristically designed cathode material Na0.76Ni0.20Mn0.42Fe0.30Mg0.04Ti0.015Zr0.025O2 (D‐NFMO) is presented, showcasing its remarkable initial reversible capacity of 175.5 mAh g−1 and exceptional long‐term cyclic stability in sodium cells. The investigation of structural composition and the stabilizing mechanisms is performed through the integration of multiple characterization techniques. Remarkably, the irreversible phase transition of P2→OP4 in D‐NFMO is observed to be dramatically suppressed, leading to a substantial enhancement in cycling stability. The comparison with the pristine cathode (P‐NFMO) offers profound insights into the long‐term electrochemical stability of D‐NFMO, highlighting its potential as a high‐voltage cathode material utilizing abundant earth elements in SIBs. This study opens up new possibilities for future advancements in sodium‐ion battery technology.

Funder

National Research Foundation of Korea

Publisher

Wiley

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