Small‐Molecule Polycyclic Aromatic Hydrocarbons as Exceptional Long‐Cycle‐Life Li‐Ion Battery Anode Materials

Author:

Arya Avi1,Hsu Sih‐Ling2,Liu Chi‐You2,Chang Meng‐Yuan3,Chang Jeng‐Kuei3ORCID,Li Elise Yu‐Tzu2ORCID,Su Yu‐Sheng14ORCID

Affiliation:

1. International College of Semiconductor Technology National Yang Ming Chiao Tung University 1001 Daxue Road Hsinchu 300093 Taiwan

2. Department of Chemistry National Taiwan Normal University No. 88, Section 4, Tingzhou Road Taipei 11677 Taiwan

3. Department of Materials Science and Engineering National Yang Ming Chiao Tung University 1001 Daxue Road Hsinchu 300093 Taiwan

4. Industry Academia Innovation School National Yang Ming Chiao Tung University 1001 Daxue Road Hsinchu 300093 Taiwan

Abstract

The growing demand for cost‐effective and sustainable energy‐storage solutions has spurred interest in novel anode materials for lithium‐ion batteries (LIBs). In this study, the potential of small‐molecule polycyclic aromatic hydrocarbons (SMPAHs) as promising candidates for LIB anodes is explored. Through a comprehensive experimental approach involving electrode fabrication, material characterization, and electrochemical testing, the electrochemical performance of SMPAHs, including naphthalene, biphenyl, 9,9‐dimethylfluorene, phenanthrene, p‐terphenyl, and pyrene (Py), is thoroughly investigated. In the results, the impressive cycle stability, high specific capacity, and excellent rate capability of the SMPAH electrode are revealed. Additionally, a direct contact prelithiation strategy is implemented to enhance the initial Coulombic efficiency (ICE) of SMPAH anodes, yielding significant improvements in the ICE and cycle stability. Computational simulations provide valuable insights into the electrochemical behavior and lithium‐storage mechanisms of SMPAHs, confirming their potential as effective anode materials. The simulations reveal favorable lithium adsorption sites, the predominant storage mechanisms, and the dissolution mechanism of Py through computational calculations. Overall, in this study, the promise of SMPAHs is highlighted as sustainable anode materials for LIBs, advancing energy‐storage technologies toward a greener future.

Funder

National Science and Technology Council

Ministry of Education

Publisher

Wiley

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