Biomimetic Construction of Ferrite Quantum Dot/Graphene Heterostructure for Enhancing Ion/Charge Transfer in Supercapacitors

Author:

Fu Min1ORCID,Chen Wei1,Lei Yu2,Yu Hao1,Lin Yuxiao3,Terrones Mauricio45ORCID

Affiliation:

1. College of Energy Storage Technology Shandong University of Science and Technology Qingdao 266590 China

2. Institute of Materials Research Center of Double Helix Guangdong Provincial Key Laboratory of Thermal Management Engineering and Materials Tsinghua Shenzhen International Graduate School Tsinghua University Shenzhen 518055 China

3. School of Physics and Electronic Engineering Jiangsu Normal University Xuzhou 221116 China

4. Department of Physics Department of Chemistry Department of Materials Sciences Center for 2‐Dimensional and Layered Materials The Pennsylvania State University University Park PA 16802 USA

5. Research Initiative for Supra‐Materials Shinshu University Nagano 380‐8553 Japan

Abstract

AbstractSpinel ferrites are regarded as promising electrode materials for supercapacitors (SCs) in virtue of their low cost and high theoretical specific capacitances. However, bulk ferrites suffer from limited electrical conductivity, sluggish ion transport, and inadequate active sites. Therefore, rational structural design and composition regulation of the ferrites are approaches to overcome these limitations. Herein, a general biomimetic mineralization synthetic strategy is proposed to synthesize ferrite (XFe2O4, X = Ni, Co, Mn) quantum dot/graphene (QD/G) heterostructures. Anchoring ferrite QD on the graphene sheets not only strengthens the structural stability, but also forms the electrical conductivity network needed to boost the ion diffusion and charge transfer. The optimized NiFe2O4 QD/G heterostructure exhibits specific capacitances of 697.5 F g−1 at 1 A g−1, and exceptional cycling performance. Furthermore, the fabricated symmetrical SCs deliver energy densities of 24.4 and 17.4 Wh kg−1 at power densities of 499.3 and 4304.2 W kg−1, respectively. Density functional theory calculations indicate the combination of NiFe2O4 QD and graphene facilitates the adsorption of potassium atoms, ensuring rapid ion/charge transfer. This work enriches the application of the biomimetic mineralization synthesis and provides effective strategies for boosting ion/charge transfer, which may offer a new way to develop advanced electrodes for SCs.

Funder

Natural Science Foundation of Shandong Province

Natural Science Foundation of Guangdong Province

Publisher

Wiley

Subject

Mechanical Engineering,Mechanics of Materials,General Materials Science

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