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Titlebook: Environmental Silicate Nano-Biocomposites; Luc Avérous,Eric Pollet Book 2012 Springer-Verlag London 2012 Environmental Nanomaterials.Green

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发表于 2025-3-21 17:32:12 | 显示全部楼层 |阅读模式
书目名称Environmental Silicate Nano-Biocomposites
编辑Luc Avérous,Eric Pollet
视频video
概述Focuses on green nanocomposites for environmental applications with a controlled end of life including biotechnological production and chemical modification, nanostructures, bioplastics processing, ch
丛书名称Green Energy and Technology
图书封面Titlebook: Environmental Silicate Nano-Biocomposites;  Luc Avérous,Eric Pollet Book 2012 Springer-Verlag London 2012 Environmental Nanomaterials.Green
描述.Environmental Silicate Nano-Biocomposites. focuses on nano-biocomposites, which are obtained by the association of silicates such as bioclays with biopolymers. By highlighting recent developments and findings, green and biodegradable nano-composites from both renewable and biodegradable polymers are explored. This includes coverage of potential markets such as packaging, agricultures, leisure and the fast food industry..The knowledge and experience of more than twenty international experts in diverse fields, from chemical and biochemical engineering to applications, is brought together in four different sections covering:.Biodegradable polymers and Silicates,.Clay/Polyesters Nano-biocomposites,.Clay/Agropolymers Nano-biocomposites, and.Applications and biodegradation of Nano-biocomposites..By exploring the relationships between the biopolymer structures, the processes, and the final properties. Environmental Silicate Nano-Biocomposites. explains how to design nano-materials to develop new, valuable, environmentally friendly properties and uses. The combination of fundamental and applied science makes this an ideal reference for a range of readers from students and lecturers to mat
出版日期Book 2012
关键词Environmental Nanomaterials; Green Nanocomposites; Nanocomposite Materials; Renewable Polymers; Sustaina
版次1
doihttps://doi.org/10.1007/978-1-4471-4108-2
isbn_softcover978-1-4471-5895-0
isbn_ebook978-1-4471-4108-2Series ISSN 1865-3529 Series E-ISSN 1865-3537
issn_series 1865-3529
copyrightSpringer-Verlag London 2012
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Biodegradable Polymers,creasing reserve of fossil fuel and the growing concern for the environment. These polymers bring a significant contribution to the sustainable development in view of the wider range of disposal options with minor environmental impact. As a result, the market of these environmentally friendly materi
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Clays and Clay Minerals as Layered Nanofillers for (Bio)Polymers,s with polymers. The general principles of silicates classification are outlined in order to better understand the structures of the various types of clay minerals as phyllosilicates. Cation exchange capacity (CEC), surface area, porosity, and rheological properties of clay minerals are briefly disc
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Polylactide/Clay Nano-Biocomposites,he major development in this field has been carried out over last one and half decades. However we are far from the goal in terms of understanding the mechanisms of the enhancement effect in the nano-composites. Continued progress in nanoscale controlling, as well as an improved understanding of the
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PCL/Clay Nano-Biocomposites, this biopolymer cannot be fully competitive with conventional thermoplastics since some of its properties appear too weak. The association of PCL with nano-sized fillers allows for significantly improving a large range of properties. The most reported nano-fillers in poly(ε-caprolactone)-based mate
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PHA/Clay Nano-Biocomposites,n bacteria as well as their practical uses have been much studied. There has been increased interest in commercial production of PHAs in recent times and, over the past 10 years in particular, there have been various reports on solution-cast or melt-processed PHA/clay nano-biocomposites and their pr
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Poly(Butylene Succinate) and Poly[(Butylene Succinate)-co-Adipate] Nanocomposites,ble production, use and end-life. This chapter discusses the preparation, characterisation, and properties of nanoclay-containing composites of biodegradable poly(butylene succinate) (PBS) and poly[(butylene succinate)-co-adipate] (PBSA). Various nanocomposite structures arising from the incorporati
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