4.8 Article

Double-Holey-Heterostructure Frameworks Enable Fast, Stable, and Simultaneous Ultrahigh Gravimetric, Areal, and Volumetric Lithium Storage

Journal

ACS NANO
Volume 12, Issue 12, Pages 12879-12887

Publisher

AMER CHEMICAL SOC
DOI: 10.1021/acsnano.8b08071

Keywords

double-holey heterostructure; 3D framework; lithium storage; areal and volumetric capacity; electrochemical energy storage

Funding

  1. National Natural Science Foundation of China [51673042, 51873039]
  2. Young Elite Scientist Sponsorship Program by CAST [2017QNRC001]
  3. Program for Professor of Special Appointment (Eastern Scholar) at Shanghai Institutions of Higher Learning [TP2015002]
  4. Deanship of Scientific Research at King Saud University [RGP-VPP-312]

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Deliberate design of advantageous nanostructures holds great promise for developing high-performance electrode materials for electrochemical energy storage. However, it remains a tremendous challenge to simultaneously gain high gravimetric, areal, and volumetric capacities as well as high rate performance and cyclability to meet practical requirements mainly due to the intractable insufficient ion diffusion and limited active sites for dense electrodes with high areal mass loadings. Herein we report a double-holey-heterostructure framework, in which holey Fe2O3 nanosheets (H-Fe2O3) are tightly and conformably grown on the holey reduced graphene oxide (H-RGO). This hierarchical nanostructure allows for rapid ion and electron transport and sufficient utilization of active sites throughout a highly compact and thick electrode. Therefore, the free-standing flexible H-Fe2O3/H-RGO heterostructure anode can simultaneously deliver ultrahigh gravimetric, areal, and volumetric capacities of 1524 mAh g(-1), 4.72 mAh cm(-2), and 2621 mAh cm(-3), respectively, at 0.2 A g(-1) after 120 cycles, and extraordinary rate performance with a capacity of 487 mAh g(-1) (1.51 mAh cm(-2)) at a high current density of 30 A g(-1) (93 mA cm(-2)) as well as excellent cycling stability with a capacity retention of 96.3% after 1600 cycles, which has rarely been achieved before.

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