4.8 Article

High-Yield Carbon Dots Interlayer for Ultra-Stable Zinc Batteries

Journal

ADVANCED ENERGY MATERIALS
Volume 12, Issue 26, Pages -

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/aenm.202200665

Keywords

carbon dots; dendrites; surface coating; zinc anodes; zinc batteries

Funding

  1. National Natural Science Foundation of China [51904342, 52074359, U21A20284]
  2. Hunan Provincial Science and Technology Plan [2020JJ3048]
  3. Science and Technology Innovation Program of Hunan Province [2021RC3014, 2020RC4005, 2019RS1004]
  4. Innovation Mover Program of Central South University [2020CX007]

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High yield carbon dots (CDs) with abundant polar functional groups are used to optimize the electrolyte/Zn interfaces, effectively preventing dendritic growth and parasitic reactions. The CDs also improve the reaction kinetics and lifespan of the Zn anode.
The practical implementation of Zn metal anodes with high volumetric capacity is seriously plagued by the dendritic growth and accompanying interfacial parasitic reactions. Herein, high yield carbon dots (CDs) with abundant polar functional groups (-CHO and -C(sic)N), as a functional artificial interface layer, are rationally designed to optimize electrolyte/Zn interfaces with large-scale viability. Of particular note, the quantum-sized CDs with strong Zn affinity can effectively ameliorate the electric field distribution and ensure that more Zn2+ is adsorbed onto the whole electrode, which are beneficial for lowering the barrier of Zn2+ nucleation and inducing homogeneous Zn deposition, thus rendering a dendrite-free Zn anode, as extensively confirmed by in situ optical microscope observation and finite element simulation. Meanwhile, the dense and insoluble coating layer with abundant polar functional groups is conducive to arousing the repulsion effect, which is good for shielding the active water and SO42-, thus eliminating the water-mediated parasitic reactions and improving Zn2+ reaction kinetics. More importantly, the electrochemically stable CDs layer endows the Zn anode with a prolonged lifespan of 3000 h at 1 mA cm(-2). This feasible and efficient fabrication of functional CDs layer opens a new avenue for stable dendrite-free metal anodes.

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