Investigation and Drug Design for Novel Molecules From Natural Products As Inhibitors for Controlling Multiple Myeloma Disease Using In-Silico Tools

dc.contributor.authorZari, Ali
dc.contributor.authorKurdi, Lina A. F.
dc.contributor.authorJaber, Fatima A
dc.contributor.authorAlghamdi, Khalid M S
dc.contributor.authorZari, Talal A
dc.contributor.authorBahieldin, Ahmed
dc.contributor.authorHakeem, Khalid Rehman
dc.contributor.authorAlnahdi, Hanan S.
dc.contributor.authorEdris, Sherif
dc.contributor.authorAshraf, Ghulam Md
dc.date.accessioned2024-06-20T08:42:09Z
dc.date.available2024-06-20T08:42:09Z
dc.date.issued2024-01-03
dc.description.abstractThe demand for energy across the world is constantly rising. Therefore remarkable endeavors have been dedicated to the development of high-performance energy storage devices with nanoscale design and hybrid approaches. Inorganic nanomaterials like transition metal oxide/hydroxide, metal chalcogenide, metal carbide, metal–organic framework, carbonaceous compounds, polymer-based porous materials, and their hybrid nanocomposites are being used for energy storage purposes in lithium-ion batteries, supercapacitors (SCs), etc. To produce these nanomaterials that are ideal for energy storage, it is very important to have porous structures, high surface area, high electrical conductivity, charge accommodation capacity, and tunable electronic structures. These electrodes can be synthesized via several synthetic strategies like intercalative hybridization, core–shell architecture, surface anchoring, and defect control. This book attempts to discuss the synthesis and applications of various advanced nanomaterials and their hybrid nanocomposites that are being used for designing efficient batteries and SCs-based energy storage systems. Moreover, their features, limitations, and real-time resolutions will be focused on.
dc.identifier.otherhttp://dspace.daffodilvarsity.edu.bd:8080/handle/123456789/12747
dc.identifier.urihttp://dspace.daffodilvarsity.edu.bd:8080/handle/123456789/12747
dc.language.isoen_US
dc.publisherTaylor & Francis Group
dc.sourceDIU Institutional Repository
dc.subjectDrug
dc.subjectDiseases
dc.subjectAnticancer
dc.subjectMolecular machinery
dc.titleInvestigation and Drug Design for Novel Molecules From Natural Products As Inhibitors for Controlling Multiple Myeloma Disease Using In-Silico Tools
dc.typeArticle

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