Barbinta-Patrascu Marcela-Elisabeta, Bita Bogdan, Negut Irina
Department of Electricity, Solid-State Physics and Biophysics, Faculty of Physics, University of Bucharest, 077125 Magurele, Romania.
National Institute for Lasers, Plasma and Radiation Physics, 077125 Magurele, Romania.
Biomimetics (Basel). 2024 Jun 26;9(7):390. doi: 10.3390/biomimetics9070390.
This review explores the extensive applications of plants in areas of biomimetics and bioinspiration, highlighting their role in developing sustainable solutions across various fields such as medicine, materials science, and environmental technology. Plants not only serve essential ecological functions but also provide a rich source of inspiration for innovations in green nanotechnology, biomedicine, and architecture. In the past decade, the focus has shifted towards utilizing plant-based and vegetal waste materials in creating eco-friendly and cost-effective materials with remarkable properties. These materials are employed in making advancements in drug delivery, environmental remediation, and the production of renewable energy. Specifically, the review discusses the use of (nano)bionic plants capable of detecting explosives and environmental contaminants, underscoring their potential in improving quality of life and even in lifesaving applications. The work also refers to the architectural inspirations drawn from the plant world to develop novel design concepts that are both functional and aesthetic. It elaborates on how engineered plants and vegetal waste have been transformed into value-added materials through innovative applications, especially highlighting their roles in wastewater treatment and as electronic components. Moreover, the integration of plants in the synthesis of biocompatible materials for medical applications such as tissue engineering scaffolds and artificial muscles demonstrates their versatility and capacity to replace more traditional synthetic materials, aligning with global sustainability goals. This paper provides a comprehensive overview of the current and potential uses of living plants in technological advancements, advocating for a deeper exploration of vegetal materials to address pressing environmental and technological challenges.
本综述探讨了植物在仿生学和生物启发领域的广泛应用,强调了它们在医学、材料科学和环境技术等各个领域开发可持续解决方案中的作用。植物不仅具有重要的生态功能,还为绿色纳米技术、生物医学和建筑领域的创新提供了丰富的灵感来源。在过去十年中,重点已转向利用植物基和植物废料来制造具有卓越性能的环保且经济高效的材料。这些材料被用于推进药物递送、环境修复和可再生能源生产。具体而言,该综述讨论了能够检测爆炸物和环境污染物的(纳米)仿生植物的用途,强调了它们在改善生活质量甚至在救生应用中的潜力。这项工作还提及了从植物世界汲取的建筑灵感,以开发兼具功能性和美学性的新颖设计概念。它详细阐述了工程植物和植物废料如何通过创新应用转化为增值材料,尤其突出了它们在废水处理和作为电子元件方面的作用。此外,将植物整合到用于组织工程支架和人工肌肉等医学应用的生物相容性材料的合成中,证明了它们的多功能性以及替代更传统合成材料的能力,符合全球可持续发展目标。本文全面概述了活植物在技术进步中的当前和潜在用途,倡导更深入地探索植物材料以应对紧迫的环境和技术挑战。