Engineering of [(2D MoS2/CNTs)1(Ti3C2Tx/CNTs)2]x3 Heterostructures via Layer-by-Layer Spray Deposition: towards tailored high-performing energy storage devices

08 August 2024, Version 1
This content is a preprint and has not undergone peer review at the time of posting.

Abstract

In this work, we engineer 2D/3D hybrid architectures or heterostructures using cost-effective and scalable layer-by-layer spray deposition methods using 2D MoS2, Ti3C2Tx as building blocks. We assemble heterostructure using a simple-to-complex strategy and systematically optimize the architecture to improve charge storage performance. The architecture and performance of the heterostructures are investigated using imaging and a variety of electrochemical methods. The optimized [(2D MoS2/CNTs)1(Ti3C2Tx/CNTs)2]x3 heterostructure showed remarkable synergystic effects in terms of capacity achieved (up to 800 mAh g-1 at 0.05 A g-1), surpassing the sum of capacities of the constituting building blocks, excellent cycling stability from low to very high rates, e.g. up to 2000 cycles at 5 A g-1 with 100 % Coulombic efficiency and capacity retention. This performance and determined predominant pseudocapacitive charge storage processes suggest applications for Li-ion capacitors. We demonstrated that by adequate tailoring of heterostructures, the drawbacks of individual nanomaterials such as the low cycling stability of 2D MoS2 can be overcome while maintaining the benefits of its high capacity. The manufacturing methods and architecture design principles here established constitute a proof of concept of the powerful potential of heterostructures in surmounting the limitations of capacity, rate performance and cycling stability of current commercial energy storage devices.

Keywords

2D/3D hybrid architectures
heterostructures
Ti3C2Tx
2D MoS2
Layer-by-layer spray deposition
Li-ion storage
MXenes

Supplementary materials

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Table of contents S1. Determination of suspension concentration using UV-Vis spectroscopy S2. Further details of Rietveld refinement S3. SEM studies of spray-deposited Ti3C2Tx and 2D MoS2 electrodes: full film coverage S4. SEM studies of pristine and cycled Ti3C2Tx and 2D MoS2 electrodes S5. SEM studies of cycled (Ti3C2Tx/MoS2)x3 and (Ti3C2Tx/MoS2)x8 heterostructures S6. SEM studies of cycled (MoS2/Ti3C2Tx)x3 heterostructures S7. SEM studies of cycled (MoS2/Ti3C2Tx/CNTs)x3 heterostructures S8. Electrochemical studies of CNTs and SEM studies of cycled Ti3C2Tx and Ti3C2Tx/CNTs electrodes S9. SEM studies of cycled MoS2 and MoS2/CNTs electrodes S10. GCPL studies of 2D MoS2/Ti3C2Tx-mixed and 2D MoS2/Ti3C2Tx/CNTs-mixed electrodes S11. Electrochemical impedance spectroscopy studies of 2D MoS2 and Ti3C2Tx electrodes and a (MoS2/Ti3C2Tx/CNTs)x3 heterostructure S12. Charge storage mechanisms studies of (MoS2/Ti3C2Tx/CNTs)x3 heterostructures via kinetic models References
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