4.7 Article

Fast-charging and long-lasting Mg-Na hybrid batteries based on extremely pseudocapacitive bronze TiO2 nanosheet cathodes

Journal

CHEMICAL ENGINEERING JOURNAL
Volume 433, Issue -, Pages -

Publisher

ELSEVIER SCIENCE SA
DOI: 10.1016/j.cej.2021.133810

Keywords

Hybrid battery; Nanosheets; Interfaces; Intercalation; Pseudocapacitance

Funding

  1. Spanish Ministry of Economy, Industry and Competitiveness (MINECO) [IJCI-2015-25488, MAT2017-84002-C2-2-R, RYC-2018-025893-I, 2016-T1/IND-1300]
  2. Comunidad de Madrid [IJCI-2015-25488, MAT2017-84002-C2-2-R, RYC-2018-025893-I, 2016-T1/IND-1300]
  3. Spanish Ministry of Science and Innovation [IJCI-2015-25488, MAT2017-84002-C2-2-R, RYC-2018-025893-I, 2016-T1/IND-1300]

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A fast charging and ultralong-life Mg-Na hybrid battery based on an extremely pseudocapacitive hierarchical bronze TiO2 nanosheet cathode is reported for the first time. The two-dimensional cathode exhibited outstanding pseudocapacitance, specific capacities, rate performance, cycling stability, coulombic efficiency and fast charging performance, which are vastly superior to previously reported MgNa hybrid battery cathodes.
Despite of their inexpensive and sustainable characteristics, practical application of Mg-Na hybrid batteries are limited due to the lack of high performance dual-ion compatible cathode materials. This is mainly due to the increased size of Na-ions and improved electrostatic repulsion resulting from the high charge density of Mg-ions. Herein, we report for the first time a fast charging and ultralong-life Mg-Na hybrid battery based on an extremely pseudocapacitive hierarchical bronze TiO2 (TiO2-B) nanosheet cathode. This two dimensional cathode exhibited outstanding pseudocapacitance (up to 94%), specific capacities (195 mAh/g @ 25 mA/g), rate performance (140 mAh/g @ 1A/g), cycling stability (similar to 76% after 6000 cycles @ 1A/g), coulombic efficiency (similar to 100%) and fastcharging (similar to 8 min). These performances are vastly superior to the previously reported metal oxide type MgNa hybrid battery cathodes. Mechanistic investigations revealed Mg-Na dual-ion intercalation pseudocapacitance with no significant structural changes. Exceptional electrochemical performance of the TiO2-B nanosheet cathode is credited to the dominant pseudocapacitive Mg-Na dual-ion diffusion through the nanointerfaces resulting from the hierarchical microstructure of TiO2-B nanosheets. High surface area, ultrathin nature and mesoporous structure are also contributed as secondary factors by facilitating superior contact with the electrolyte solution. The demonstrated method of nanointerfaces induced pseudocapacitive Mg-Na dual-ion intercalation provides new opportunities for the development of high-performance Mg-Na hybrid batteries.

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