Chemical‐Stabilized Aldehyde‐Tuned Hydrogen‐Bonded Organic Frameworks for Long‐Cycle and High‐Rate Sodium‐Ion Organic Batteries

Author:

Guo Chaofei1ORCID,Gao Yun23,Li Shang‐Qi4,Wang Yuxuan1,Yang Xue‐Juan1,Zhi Chuanwei5,Zhang Hang23,Zhu Yan‐Fang23,Chen Shuangqiang23,Chou Shu‐Lei23,Dou Shi‐Xue6,Xiao Yao23ORCID,Luo Xiping1

Affiliation:

1. College of Chemistry and Materials Engineering Zhejiang A&F University Hangzhou 311300 P. R. China

2. Institute for Carbon Neutralization College of Chemistry and Materials Engineering Wenzhou University Wenzhou 325035 P. R. China

3. Wenzhou Key Laboratory of Sodium‐Ion Batteries Wenzhou University Technology Innovation Institute for Carbon Neutralization Wenzhou Zhejiang 325035 P. R. China

4. Shanghai Electrochemical Energy Devices Research Center School of Chemistry and Chemical Engineering Shanghai Jiao Tong University Shanghai 200240 P. R. China

5. Department of Biomedical Engineering City University of Hong Kong Hong Kong 999077 P. R. China

6. Institute of Energy Material Science University of Shanghai for Science and Technology Shanghai 200093 P. R. China

Abstract

AbstractHydrogen‐bonded organic frameworks (HOFs) are considered as potential choice for future energy storage systems due to their adjustable chemistry, environment friendliness, and cost‐effectiveness. In this study, structurally stabilized and aldehyde‐tuned hydrogen‐bonded organic frameworks (HOFs‐8) are designed and prepared to contain arrayed electronegative sites for sodium‐ion storage. Benefitting from the flexible hydrogen bond and unique structural symmetry, HOFs‐8 can achieve efficient utilization of the active sites and fast transport of sodium ions and electrons. The HOFs‐8 electrode exhibits an impressive lifespan of 5000 cycles at 3.66 A g−1 (20 C). In situ Fourier Transform infrared spectroscopy (in situ FT‐IR) and ex situ X‐ray Photoelectron Spectroscopy (ex situ XPS) analyses are performed to illustrate the mechanism of sodium‐ion storage involving aldehyde‐tuned C═O. Additionally, flexible hydrogen bonds in HOFs materials with unique structural symmetries are investigated to elucidate the mechanism of hydrogen bonding for improving their electrochemical properties. Density functional theory (DFT) simulations verified that HOFs‐8 has excellent Na+ diffusion kinetics, enabling it to demonstrate outstanding rate capability. This work offers insight into the design of new electrodes and improved HOFs, which are expected to have tremendous potential in energy storage systems.

Funder

National Natural Science Foundation of China

Natural Science Foundation of Zhejiang Province

State Key Laboratory of Electrical Insulation and Power Equipment

Publisher

Wiley

Subject

Electrochemistry,Condensed Matter Physics,Biomaterials,Electronic, Optical and Magnetic Materials

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