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Interlayer Sodium Plating/Stripping in Van der Waals-Layered Quantum Dot Superstructure.
Ruole Yuan1, Peng Liu1, Xiaomei Wang1
1State Key Laboratory of Chemical Resource Engineering, Beijing Key Laboratory of Electrochemical Process and Technology for Materials, Beijing University of Chemical Technology, Beijing, 100029, P. R. China.
Small (Weinheim an Der Bergstrasse, Germany)
|March 27, 2023
Summary
Researchers developed a novel van der Waals-layered carbon/quantum dot (QD) superstructure for high-energy metal anodes. This new material effectively suppresses dendrite growth in sodium metal batteries, enabling stable cycling for 1000 hours.
Area of Science:
- Materials Science
- Electrochemistry
- Nanotechnology
Background:
- Assembling quantum dots (QDs) into van der Waals (vdW)-layered superstructures is crucial for high-energy-density metal anodes.
- Designing such superstructures presents significant challenges in materials synthesis and assembly.
Purpose of the Study:
- To propose a novel chemical-vapor Oriented Attachment (OA) growth strategy for synthesizing vdW-layered carbon/QDs hybrid superlattice nanosheets.
- To investigate the structural properties and electrochemical performance of the synthesized Fe7S8@CNS material as a sodium metal anode host.
Main Methods:
- Utilized a chemical-vapor Oriented Attachment (OA) growth strategy to synthesize vdW-layered carbon/QDs hybrid superlattice nanosheets (Fe7S8@CNS).
- Characterized the superstructure's morphology, structure, and interlayer spacing (3 nm).
- Evaluated the electrochemical performance of Fe7S8@CNS as a host material for sodium metal anodes in half and full cells.
Main Results:
- Successfully synthesized Fe7S8@CNS with a large vdW gap, exhibiting quasi-atomic growth behavior.
- Demonstrated interlayer sodium plating/stripping behavior in Fe7S8@CNS, effectively suppressing sodium dendrite growth.
- Achieved stable cycling for 1000 hours with a high Coulombic efficiency (CE) of ~99.5% at 3.0 mA cm⁻² and 3.0 mAh cm⁻² in sodium metal anodes.
- Full cells (Na@Fe7S8@CNS||Na3V2(PO4)3) showed excellent cycle stability with 97% capacity retention after 1000 cycles at 1.0 A g⁻¹.
Conclusions:
- The developed OA growth strategy enables the creation of novel vdW-layered QDs superstructures.
- Fe7S8@CNS serves as an effective host material for sodium metal anodes, enhancing stability and suppressing dendrite formation.
- This work expands the family of vdW-layered QDs superstructures and their potential for advanced energy storage applications.

