Synthesis, Properties, and Chemical Applications of Functional Nanomaterials: Current Trends and Future Perspectives

نویسندگان

1 School of Pharmacy, Guru Nanak Institutions Technical Campus, Ibrahimpatnam, Telangana, India

2 Department of Chemistry, Koneru Lakshmaiah Education Foundation, Green fields, Vaddeswaram, Guntur, Andhra Pradesh, 522302 India

3 KL Business school, Koneru Lakshmaiah Education Foundation, Vaddeswaram, Green fields, AP-522302, India

4 Department of Pharmaceutics, MB School of Pharmaceutical Sciences, Mohan Babu University, Rangampet, Tirupati, Andhra Pradesh – 517102, India

5 Department of Pharmaceutics, Teerthankar Mahaveer College of Pharmacy, Teerthankar Mahaveer University, Moradabad, Uttar Pradesh 244001, India

6 School of Pharmacy, ITM University, Gwalior, Madhya Pradesh, India

7 Department of Pharmaceutics, KVSR Siddhartha College of Pharmaceutical Sciences, Vijayawada, Andhra Pradesh 520008, India

8 Department of Pharmacology, GITAM School of Pharmacy, GITAM (Deemed to be University), campus Hyderabad, Telangana-502329, India

doi
10.48309/jcr.2026.534778.1481
چکیده

Functional nanomaterials have emerged as transformative agents in modern chemical science, offering unprecedented control over their physical, chemical, and electronic properties at the nanoscale level. This review comprehensively explores the synthesis, classification, properties, and chemical applications of functional nanomaterials. We begin with an overview of their definitions, historical developments, and critical roles in the chemical industry. Nanomaterials are classified into major types, including metals and metal oxides, carbon-based structures, polymeric and dendritic systems, and hybrid composites, each possessing unique characteristics and application potential. A detailed discussion of synthesis strategies highlights conventional and advanced methods, including sol-gel, hydrothermal, chemical vapor deposition, and eco-friendly green synthesis. The physicochemical and structural properties, such as particle size, surface area, and optical, magnetic, mechanical, and thermal attributes, are critically analysed to correlate their structure–function relationships. The review further elaborates on key application domains, including catalysis (heterogeneous, photo-, and electrocatalysis), sensors, environmental remediation, and energy-related systems, such as batteries and solar cells. Current challenges, such as scalability, environmental safety, and regulatory hurdles, are discussed alongside emerging trends, including stimuli-responsive systems and AI-assisted material design. This article concludes with valuable insights into future research directions, highlighting the need for interdisciplinary approaches and sustainable development. This review aims to serve as a valuable resource for researchers and practitioners seeking to harness the potential of functional nanomaterials in the chemical and allied sectors.