Azeem Babar
Department of Chemical Engineering, College of Engineering, Imam Mohammad Ibn Saud Islamic University (IMSIU), Riyadh 11432, Saudi Arabia.
Gels. 2025 Aug 26;11(9):681. doi: 10.3390/gels11090681.
The quest for sustainable agriculture demands nutrient delivery systems that align productivity with environmental responsibility. This review critically evaluates stimuli-responsive starch-based biopolymer coatings for controlled-release fertilizers (CRFs), highlighting their structure, functionality, and agronomic relevance. Starch, an abundant and biodegradable polysaccharide, offers intrinsic advantages such as modifiability, film-forming ability, and compatibility with green chemistry. The paper discusses starch's physicochemical characteristics, its functionalization to achieve responsiveness to environmental triggers (pH, moisture, temperature, ionic strength), and coating strategies like in situ polymerization, grafting, and nanocomposite integration. A comprehensive analysis of release kinetics, swelling behavior, biodegradability, and water retention is provided, followed by evaluations under simulated field conditions, encompassing various soil types, environmental stressors, and crop responses. Comparative insights with other smart biopolymers such as chitosan, alginate, and cellulose underscore starch's unique position in CRF technology. Despite promising developments, the review identifies critical research gaps, including limitations in scalability, coordination of multi-stimuli responses, and the need for extensive field validation. This work serves as a consolidated platform for researchers, policy makers, and agro-industrial stakeholders aiming to design smart, eco-friendly fertilizers that address global food security while minimizing ecological footprints.
对可持续农业的追求需要能使生产力与环境责任相匹配的养分输送系统。本综述对用于控释肥料(CRF)的刺激响应型淀粉基生物聚合物涂层进行了批判性评估,重点介绍了它们的结构、功能和农学相关性。淀粉是一种丰富且可生物降解的多糖,具有可改性、成膜能力以及与绿色化学的兼容性等固有优势。本文讨论了淀粉的物理化学特性、其功能化以实现对环境触发因素(pH值、湿度、温度、离子强度)的响应,以及诸如原位聚合、接枝和纳米复合材料整合等涂层策略。对释放动力学、溶胀行为、生物降解性和保水性进行了全面分析,随后在模拟田间条件下进行评估,涵盖各种土壤类型、环境压力因素和作物反应。与壳聚糖、藻酸盐和纤维素等其他智能生物聚合物的比较见解突出了淀粉在控释肥料技术中的独特地位。尽管取得了有前景的进展,但该综述指出了关键的研究差距,包括可扩展性的局限性、多刺激响应的协调以及广泛田间验证的必要性。这项工作为研究人员、政策制定者和农业产业利益相关者提供了一个综合平台,旨在设计智能、环保的肥料,以解决全球粮食安全问题,同时尽量减少生态足迹。