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Advances in next gen aerogel materials for radionuclides cleanup: From functional design to computational insights

The result's identifiers

  • Result code in IS VaVaI

    <a href="https://www.isvavai.cz/riv?ss=detail&h=RIV%2F61989100%3A27640%2F25%3A10258421" target="_blank" >RIV/61989100:27640/25:10258421 - isvavai.cz</a>

  • Result on the web

    <a href="https://www.sciencedirect.com/science/article/pii/S0010854525006174?via%3Dihub#ac0005" target="_blank" >https://www.sciencedirect.com/science/article/pii/S0010854525006174?via%3Dihub#ac0005</a>

  • DOI - Digital Object Identifier

    <a href="http://dx.doi.org/10.1016/j.ccr.2025.217047" target="_blank" >10.1016/j.ccr.2025.217047</a>

Alternative languages

  • Result language

    angličtina

  • Original language name

    Advances in next gen aerogel materials for radionuclides cleanup: From functional design to computational insights

  • Original language description

    Radionuclide pollution from both anthropogenic and natural sources presents a serious threat to human health and environmental safety. Aerogel-based adsorbents have become promising options for cleaning up radionuclides due to huge surface area, with different pore sizes, lightweight, and can be chemically adjusted. However, so far, there hasn&apos;t been a complete review that brings together and examines how aerogel materials especially modified and mixed types can specifically capture radionuclides like uranium (U), thorium (Th), strontium (Sr), cesium (Cs), and iodine-131 [131I]. This review highlights recent advances in the development of aerogels, including silica, carbon, polymeric, metal oxide, hybrid, MXene, and porous framework-derived materials such as metal-organic frameworks (MOFs) and covalent organic frameworks (COFs) for efficient capture of hazardous radionuclides. The influence of critical parameters such as pH, temperature, and surface characteristics on adsorption performance is systematically discussed. Advanced characterization methods such as X-ray photoelectron spectroscopy (XPS), X-ray absorption spectroscopy (XAS), and Brunauer-Emmett-Teller (BET) surface area analysis to explain how aerogel radionuclide complexes interact at the electronic level, how they bond, and how stable their structure is explored. Additional insights from density functional theory (DFT) and new machine learning (ML) models help predict binding energies, charge transfer, and thermodynamic feasibility, speeding up the smart design of effective adsorbents. This review provides a detailed resource for researchers in coordination chemistry, environmental cleanup, materials science, and nanotechnology, and it aims to encourage new ideas in radionuclide adsorption technologies while offering a full guide for making new aerogel materials that can capture radionuclides.

  • Czech name

  • Czech description

Classification

  • Type

    J<sub>imp</sub> - Article in a specialist periodical, which is included in the Web of Science database

  • CEP classification

  • OECD FORD branch

    10400 - Chemical sciences

Result continuities

  • Project

  • Continuities

    I - Institucionalni podpora na dlouhodoby koncepcni rozvoj vyzkumne organizace

Others

  • Publication year

    2025

  • Confidentiality

    S - Úplné a pravdivé údaje o projektu nepodléhají ochraně podle zvláštních právních předpisů

Data specific for result type

  • Name of the periodical

    Coordination Chemistry Reviews

  • ISSN

    0010-8545

  • e-ISSN

    1873-3840

  • Volume of the periodical

    545

  • Issue of the periodical within the volume

    December

  • Country of publishing house

    CH - SWITZERLAND

  • Number of pages

    51

  • Pages from-to

    nestránkováno

  • UT code for WoS article

    001553981300002

  • EID of the result in the Scopus database

    2-s2.0-105012757877