← 論文一覧に戻る

Targeting 100% LithiumUtilization in Lithium MetalBatteries

リチウム金属電池におけるリチウム利用率100%の達成を目指して (AI 翻訳)

Seungwoo Choi, Juyoung Kim, Jiyeon Seo, Khalil Amine, Peng Bai, Dae-Kwon Boo, Zheng Chen, Yujang Cho, Jang Wook Choi, Nam‐Soon Choi, Tae Young Choi, Wootaek Choi, Yi Cui, Betar M. Gallant, Shiyu Ge, Kelsey B. Hatzell, Yushin Jang, Zhengyu Ju, Ji‐Won Jung, Hee‐Tak Kim +30

ACS Nano📚 査読済 / ジャーナル2026-08-01#エネルギー転換Origin: Global対象セクター: energy_storage
DOI: 10.1021/acsnano.6c06180
原典: https://doi.org/10.1021/acsnano.6c06180

🤖 gxceed AI 要約

日本語

本レビューは、アノードフリーリチウム金属電池(AFLMB)の実現に向けた課題を俯瞰的に整理し、液体電解質に焦点を当てて、リチウムの利用率と可逆性の評価方法、セル内での不均一な電気化学・機械的挙動の発生メカニズムとその制御法を論じる。ナノからセルスケールまでの階層的視点の重要性を強調し、将来の研究指針を示す。持続可能なエネルギー貯蔵への貢献を目指す。

English

This review provides a panoramic perspective on anode-free lithium metal batteries (AFLMBs), focusing on liquid electrolytes. It outlines fundamental principles, discusses heterogeneous behaviors in full cells, and emphasizes a hierarchical view from nano to cell scale. It integrates expert perspectives to guide future research, contributing to sustainable energy storage.

Unofficial AI-generated summary based on the public title and abstract. Not an official translation.

📝 gxceed 編集解説 — Why this matters

日本のGX文脈において

日本のGX文脈では、蓄電池の性能向上は再生可能エネルギーの普及やEV推進に直結する。本レビューは、次世代電池の技術課題を整理し、日本の電池産業の競争力強化やエネルギー政策への示唆を与える。

In the global GX context

Globally, this review addresses the challenge of maximizing energy density in batteries, which is critical for electrification and decarbonization. It provides a system-level framework that can inform research directions and policy support for advanced energy storage technologies.

👥 読者別の含意

🔬研究者:Provides a comprehensive framework for understanding AFLMBs, highlighting key challenges and research directions for lithium utilization.

🏢実務担当者:Offers insights into battery technology advancements that could influence product development and energy storage strategies.

🏛政策担当者:Highlights the importance of supporting battery R&D for sustainable energy transition.

📄 Abstract(原文)

Abstract Anode-free lithium metal batteries (AFLMBs) represent the ultimate solution to mankind’s quest for the Holy Grail of batteries, where the cell-level energy density is maximized on the assumption that lithium (Li0) must be fully utilized with near 100% Coulombic efficiency. Although substantial progress has been made since the anode-free concept was first proposed, the challenges presented by the most powerful anode material that can be found on the periodic table still remain unresolved due to its extreme reactive nature, which not only makes it impossible to retain 100% reversibility but also induces inhomogeneity during repeated plating/stripping cycles and persistent capacity loss over a long period of time. The isolated study approaches, emphasizing either individual electrolyte components or interphasial chemistry engineering, but mostly focused on the negative-electrode current collector, hinder insight into issues arising when these components are assembled into cells and forced to interface with each other. In this review, we attempt to examine this high-dimensional topic from a panoramic perspective, with the focus placed on the liquid electrolytes. We first outline the fundamental operating principles of key individual battery components, together with practical perspectives for evaluating lithium utilization and reversibility in AFLMBs. We then discuss how these components interact when assembled into full cells, how such interactions give rise to heterogeneous electrochemical and mechanical behaviors, and how these phenomena can be characterized and regulated. It is also outlined that a hierarchical perspective on lithium behavior, spanning from the nano- to cell-scale, is essential to enable plating, stripping, and recovery in AFLMBs. Finally, we present perspectives from leading researchers actively working on the various elements that constitute AFLMBs and integrate these viewpoints to clarify the future research directions of this field. By providing a system-level framework for understanding AFLMBs, this review aims to guide future research efforts and contribute to addressing the broader challenges of sustainable energy storage.

🔗 Provenance — このレコードを発見したソース

🔔 こうした論文の新着を逃したくない方は キーワードアラート に登録(無料・3キーワードまで)。

gxceed は公開メタデータに基づく研究支援データセットです。要約・翻訳・解説は AI 支援で生成されています。 最終的な解釈・検証は利用者が原典資料に基づいて行うことを前提とします。