García-González Carlos A, Blanco-Vales María, Barros Joana, Boccia Antonella Caterina, Budtova Tatiana, Durães Luisa, Erkey Can, Gallo Marta, Herman Petra, Kalmár József, Iglesias-Mejuto Ana, Malfait Wim J, Zhao Shanyu, Manzocco Lara, Plazzotta Stella, Milovanovic Stoja, Neagu Monica, Nita Loredana E, Paraskevopoulou Patrina, Roig Anna, Simón-Vázquez Rosana, Smirnova Irina, Tomović Željko, López-Iglesias Clara
AerogelsLab, I+D Farma Group (GI-1645), Department of Pharmacology, Pharmacy and Pharmaceutical Technology, Faculty of Pharmacy, iMATUS and Health Research Institute of Santiago de Compostela (IDIS), Universidade de Santiago de Compostela, E-15782 Santiago de Compostela, Spain.
Instituto de Investigação e Inovação em Saúde da Universidade do Porto, Rua Alfredo Allen 208, 4200-125 Porto, Portugal.
ACS Sustain Chem Eng. 2025 Apr 25;13(18):6469-6492. doi: 10.1021/acssuschemeng.4c09747. eCollection 2025 May 12.
Aerogels are exceptionally lightweight materials characterized by their high open porosity and remarkable specific surface area, currently used across a wide array of industrial sectors from construction to energy storage and have great potential for expanding their applicability and unlocking new market opportunities. Driven by global economic growth and an intensifying environmental crisis, there is a growing demand for engineering innovations that prioritize sustainability. Aerogels are well-positioned to support these sustainability efforts. Their unique properties make them ideal for energy-saving solutions, environmental remediation, and more efficient use of resources. As the demand for eco-conscious technologies rises, aerogels are poised to contribute significantly to the development of greener, more efficient products and processes across multiple industries. The sustainability of aerogel technology is crucial for the mid-to-long-term future, yet its current status has been scarcely reviewed in the literature. This Perspective explores and critically reviews significant advances on organic and hybrid aerogels in the current socioeconomic scenario, with selected case studies endorsing their contribution to the UN Sustainable Development Goals. It also identifies research gaps while proposing innovative strategies to enhance the sustainability of aerogel production through the application of circular economy principles. Key strategies discussed involve the fabrication of aerogels using eco-friendly sources, such as biopolymers derived from biorefinery processes or from waste materials. Additionally, this Perspective examines the development of methods for the reuse, recycling, and end-of-life management of aerogels, along with the implementation of more efficient processing routes. Ultimately, this work highlights the need for comprehensive assessments of aerogel sustainability through life cycle assessment (LCA) and evaluations of safety and toxicity. By addressing these critical aspects, the potential of aerogels to contribute to a more sustainable future appears highly favorable from both commercial and research perspectives, paving the way for a circular aerogel economy and providing a lasting impact to the society in which we live.
气凝胶是一种特别轻质的材料,其特点是具有高开放孔隙率和显著的比表面积,目前广泛应用于从建筑到储能等众多工业领域,并且在扩大其适用性和开拓新市场机会方面具有巨大潜力。在全球经济增长和环境危机加剧的推动下,对优先考虑可持续性的工程创新的需求日益增长。气凝胶非常适合支持这些可持续发展努力。它们的独特性能使其成为节能解决方案、环境修复以及更高效利用资源的理想选择。随着对环保技术需求的增加,气凝胶有望为多个行业开发更绿色、更高效的产品和工艺做出重大贡献。气凝胶技术的可持续性对中长期未来至关重要,但其当前状况在文献中几乎未被审视。本观点探讨并批判性地回顾了当前社会经济背景下有机和混合气凝胶的重大进展,通过选定的案例研究证明它们对联合国可持续发展目标的贡献。它还识别了研究差距,同时提出创新策略,通过应用循环经济原则来提高气凝胶生产的可持续性。讨论的关键策略包括使用环保原料制造气凝胶,例如源自生物精炼过程或废料的生物聚合物。此外,本观点研究了气凝胶的再利用、回收和寿命终期管理方法的发展,以及实施更高效的加工路线。最终,这项工作强调了通过生命周期评估(LCA)对气凝胶可持续性进行全面评估以及对安全性和毒性进行评估的必要性。通过解决这些关键问题,从商业和研究角度来看,气凝胶为更可持续未来做出贡献的潜力似乎非常有利,为循环气凝胶经济铺平道路,并对我们生活的社会产生持久影响。