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◆ ACS Applied Energy Materials2026-03-04· Nanotechnology

Hierarchically Structured CsPbBr <sub>3</sub> @Ti <sub>3</sub> C <sub>2</sub> T <sub> <i>X</i> </sub> Nanohybrid Frameworks for High-Performance Supercapacitors

Priyanka, Avinash Rundla, Mahaveer Singh, Bheem Kumar, Vikash Mishra, Kedar Singh

原始摘要(英文原文)· Original abstract
Supercapacitors are promising energy-storage devices owing to their rapid charge–discharge capability and sustainability, yet their performance is limited by the lack of stable high-efficiency electrode materials. Among emerging candidates, CsPbBr 3 perovskite quantum dots (PQDs) exhibit flexible ionic-electronic conductivity, a narrow band gap, and excellent charge–transport properties, making them attractive for next-generation energy-storage applications. Yet, their poor cycling stability under extended operation limits practical performance. In contrast, MXenes (Ti 3 C 2 T X ), two-dimensional transition metal carbides, and nitrides possess outstanding metallic conductivity, hydrophilicity, abundant surface terminations, and robust structural stability, although restacking of nanosheets can hinder ion accessibility. Herein, a hierarchical CsPbBr 3 @Ti 3 C 2 T X nanocomposite was synthesized via an in situ hot-injection method to integrate the complementary advantages of both components. The resulting hybrid exhibits a large surface area, enhanced electron-ion transport, and abundant active sites, leading to remarkable electrochemical performance. When tested as a supercapacitor electrode in 5 M KOH electrolyte, it achieved a specific capacitance of 488 F/g at 1 A/g and retained 86% after 4000 cycles at 5 A/g, demonstrating its potential as a durable and high-performance electrode for advanced energy storage applications. TDOS analysis within the PBE framework reveals pronounced interfacial coupling and electronic redistribution in the CsPbBr 3 @Ti 3 C 2 T X nanocomposite yielding to enhanced charge accumulation ( Q a = 628 μC/cm 2 and Q c = 572 μC/cm 2 ) and quantum capacitance ( C Q = 452 μF/cm 2 ), endorsing its potential as a high-performance and durable supercapacitor electrode.
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Hierarchically Structured CsPbBr <sub>3</sub> @Ti <sub>3</sub> C <sub>2</sub> T <sub> <i>X</i> </sub> Nanohybrid Frameworks for High-Performance Supercapacitors — 科研速览 Science Skim