Block‐Copolymer‐Architected Materials in Electrochemical Energy Storage

Author:

Werner Jörg G.12ORCID,Li Yuanzhi1ORCID,Wiesner Ulrich3ORCID

Affiliation:

1. Department of Mechanical Engineering Boston University 110 Cummington Mall Boston MA 02215 USA

2. Division of Materials Science and Engineering Boston University 15 St. Mary's Street Boston MA 02215 USA

3. Department of Materials Science and Engineering Cornell University 330 Bard Hall Ithaca NY 14850 USA

Abstract

The multiscale architecture of electrochemical energy storage (EES) materials critically impacts device performance, including energy, power, and durability. The pore space of nano‐ to macrostructured electrodes determines mass transport within the electrolyte and defines the effective energy density. The dimensions of the active charge‐storing materials can increase stability during cycling by accommodating strains from electrochemical–mechanical coupling while also defining surface area that increases capacitive charge storage, decreases charge‐transfer resistance, but also leads to low efficiency and degradation from interfacial reactions. Thus, elucidating and developing a fundamental understanding of these correlations requires materials with precisely tunable nanoscale architectures. Herein, approaches that take advantage of the nanoscale control offered by block copolymer (BCP) self‐assembly are reviewed and insights gained from associated nanoscale phenomena observed in EES are highlighted. Systematic studies that use custom‐tailored BCPs to reveal fundamental nanostructure–property–performance relationships are emphasized. Importantly, most reports of nanostructured materials utilize low loadings and thin electrodes and results represent mass transfer limitations at the particle scale. However, as cell‐level performance involves mass transport over 10–100s of micrometers, recently emerging BCP‐based processes are further highlighted, leading to hierarchical meso/macroporous materials needed for creating multiscale structure–performance relationships and next‐generation energy storage material architectures.

Funder

Division of Chemical, Bioengineering, Environmental, and Transport Systems

Division of Materials Research

Publisher

Wiley

Subject

General Earth and Planetary Sciences,General Environmental Science

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