Submitted:
04 January 2024
Posted:
04 January 2024
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Abstract

Keywords:
1. Introduction
1.1. Contextualizing the Shift to Solid-State Energy Storage
1.2. The Constraints of Liquid Electrolyte Lithium-Ion Batteries
1.3. Advancements and Concepts of Solid-State Batteries (SSBs)
1.4. Advantages Relative to Conventional Battery Technologies
1.5. Technological Hurdles in the Adoption of Solid-State Batteries
2. Solid Electrolytes: The Heart of Solid-State Batteries
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- o Oxide Electrolytes: LIPON, NASICON and Garnet Type
- o Sulfide Electrolytes: LPS and Argyrodites
- o Polymer Electrolytes
- o Composite Electrolytes
- o Hybrid Solid-Liquid Electrolytes
2.1. Oxide Electrolytes
2.1.1. LIPON
2.1.2. NASICON
2.1.3. Garnet Type
2.2. Sulfide Electrolytes
2.2.1. LPS
2.2.2. Argyrodites

2.3. Polymer Electrolytes
2.4. Composite Electrolytes
2.5. Hybrid Solid Electrolyte-Liquid Electrolyte
2.6. Progress, Challenges and Prospects in Solid Electrolytes
3. Anode Innovations in Solid-State Batteries
3.1. Importance of Anode Material in Solid-State Batteries (SSBs)
3.2. Anode Material Selection for SSBs
3.3. Overcoming Anode Challenges
3.3.1. Prevention of Dendritic Lithium Formation
3.3.2. Enhancement of Anode/Electrolyte Contact
3.3.3. Augmentation of Anode Life Cycle and Efficiency
3.4. Anode Enhancement Techniques
3.4.1. Surface Modification and Coating
3.4.2. Nanoengineering for Improved Performance
3.4.3. Formation of Protective Layers
4. The Convergence of Solid Electrolytes and Anodes
4.1. Designing for Synergy between Anodes and Solid Electrolytes
4.2. Analytical and Experimental Insights into Solid Electrolyte-Anode Parings
4.3. Computational Approaches in Predicting and Enhancing Performance
5. Conclusions and Forward Look
Author Contributions
Funding
Data Availability Statement
Conflicts of Interest
List of Acronyms
| AEF | Area enhancement factor |
| AF-ASSB | Anode-free all-solid-state battery |
| AFB | Anode-free battery |
| ASSB | Anode/solid-state electrolyte interface |
| DLP | Digital light processing |
| DME | Dimethoxyethane |
| EV | Electric vehicle |
| FEC | Fluoroethylene carbonate |
| GCPE | Gradient composite polymer solid electrolyte |
| INPC | Inorganic nanoparticle/polymer combination |
| INFPC | Inorganic nanofiber/polymer structure |
| ISE | Inorganic solid electrolyte |
| LAGP | Li₁₊ₓAlₓGe₂₋ₓ(PO₄)₃ |
| LATP | Li1+xAxTi2-x(PO₄)₃ (where ‘A’ represents Al, Cr, Ga, Fe, In, La, Sc, or Y) |
| LE-LIB | Liquid electrolyte lithium-ion battery |
| LGPS | Li10GeP2S12 |
| LiFSI | Lithium bis(fluorosulfonyl)imide |
| LiPON | Lithium phosphorus oxynitride |
| LiTFSI | LiN(CF3SO2)2 |
| LLTO | Li0.33La0.557TiO3 |
| LLZO | Li7La3Zr2O12 |
| LLZTO | Li6.4La3Zr1.4Ta0.6O12 |
| LPS | Glass-ceramic lithium thiophosphate |
| NAS | Na3SbS4 |
| NASICON | Sodium super-ionic conductor |
| NPS | Na3PS4 |
| NZSP | Na3Zr2Si2PO12 |
| PAN | Polyacrylonitrile |
| PE | Polymer solid electrolyte |
| PEO | Polyethylene oxide |
| PVDF | Polyvinylidene fluoride |
| SEI | Solid electrolyte interphase |
| SLEIs | Solid-liquid electrolyte interfaces |
| SLA | Stereolithography |
| SSE | Solid-state electrolyte |
| SSLB | Solid-state lithium battery |
| SSBs | Solid-state batteries |
| TFBs | Planar thin-film battery |
| VOC | Volatile organic compound |
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