Rechargeable Batteries of the Future—The State of the Art from a BATTERY 2030+ Perspective

Перезаряжаемые аккумуляторы будущего — современное состояние с точки зрения BATTERY 2030+
Frank Pammer, Marcel Weil, Tejs Vegge, Elixabete Ayerbe, Maitane Berecibar, Simon Clark, Alejandro A. Franco, Janna Ruhland, Alexis Grimaud, Ivano E. Castelli, Kristina Edström, Maximilian Fichtner, Arghya Bhowmik, Marcel Meeus, Robert Dominko, Merve Erakca, Birger Horstmann, Arnulf Latz, Henning Lorrmann, Rekha Narayan, Helge S. Stein
2021-12-05

BATTERY 2030+Battery Interface GenomeMaterials Acceleration Platformoperando sensingself-healing battery materials
Abstract The development of new batteries has historically been achieved through discovery and development cycles based on the intuition of the researcher, followed by experimental trial and error—often helped along by serendipitous breakthroughs. Meanwhile, it is evident that new strategies are needed to master the ever‐growing complexity in the development of battery systems, and to fast‐track the transfer of findings from the laboratory into commercially viable products. This review gives an overview over the future needs and the current state‐of‐the art of five research pillars of the European Large‐Scale Research Initiative BATTERY 2030+, namely 1) Battery Interface Genome in combination with a Materials Acceleration Platform (BIG‐MAP), progress toward the development of 2) self‐healing battery materials, and methods for operando, 3) sensing to monitor battery health. These subjects are complemented by an overview over current and up‐coming strategies to optimize 4) manufacturability of batteries and efforts toward development of a circular battery economy through implementation of 5) recyclability aspects in the design of the battery.
1
BATTERY 2030+ identifies five research pillars to accelerate battery innovation: the Battery Interface Genome and Materials Acceleration Platform, self-healing materials, operando sensing, manufacturability, and recyclability.
2
Optimizing manufacturability and integrating recyclability into battery design are identified as essential for commercially viable products and a circular battery economy.
3
Self-healing battery materials and operando sensing are highlighted as approaches to improve battery durability and monitor battery health during operation.
4
The Battery Interface Genome combined with a Materials Acceleration Platform is presented as a strategy for mastering battery-system complexity and accelerating discovery.
5
Traditional battery development relies heavily on researcher intuition, experimental trial and error, and serendipitous discoveries, motivating more systematic strategies.

Rechargeable battery systems (future battery technologies addressed by BATTERY 2030+)

Future-oriented research and development strategies addressing battery interfaces and materials discovery, self-healing materials, operando battery-health sensing, manufacturability, and recyclability

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Publication Date
2021-12-05
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Authors
Frank Pammer
Marcel Weil
Tejs Vegge
Elixabete Ayerbe
Maitane Berecibar
Simon Clark
Alejandro A. Franco
Janna Ruhland
Alexis Grimaud
Ivano E. Castelli
Kristina Edström
Maximilian Fichtner
Arghya Bhowmik
Marcel Meeus
Robert Dominko
Merve Erakca
Birger Horstmann
Arnulf Latz
Henning Lorrmann
Rekha Narayan
Helge S. Stein
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