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Biodegradable Materials and Their Applications

Scrivener Publishing

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Martin Scrivener (martin@scrivenerpublishing.com)

Phillip Carmical (pcarmical@scrivenerpublishing.com)

Biodegradable Materials and Their Applications

This edition first published 2022 by John Wiley & Sons, Inc., 111 River Street, Hoboken, NJ 07030, USA and Scrivener Publishing LLC, 100 Cummings Center, Suite 541J, Beverly, MA 01915, USA © 2022 Scrivener Publishing LLC

For more information about Scrivener publications please visit www.scrivenerpublishing.com.

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While the publisher and authors have used their best efforts in preparing this work, they make no representations or warranties with respect to the accuracy or completeness of the contents of this work and specifically disclaim all warranties, including without limitation any implied warranties of merchantability or fitness for a particular purpose. No warranty may be created or extended by sales representatives, written sales materials, or promotional statements for this work. The fact that an organization, website, or product is referred to in this work as a citation and/or potential source of further information does not mean that the publisher and authors endorse the information or services the organization, website, or product may provide or recommendations it may make. This work is sold with the understanding that the publisher is not engaged in rendering professional services. The advice and strategies contained herein may not be suitable for your situation. You should consult with a specialist where appropriate. Neither the publisher nor authors shall be liable for any loss of profit or any other commercial damages, including but not limited to special, incidental, consequential, or other damages. Further, readers should be aware that websites listed in this work may have changed or disappeared between when this work was written and when it is read.

Library of Congress Cataloging-in-Publication Data

ISBN 978-1-119-90490-8

Cover image: Pixabay.Com

Cover design by Russell Richardson

Set in size of 11pt and Minion Pro by Manila Typesetting Company, Makati, Philippines

2.4.1

2.4.5

2.4.6

4 Biodegradable and Bioactive Films or Coatings

Juliana Santos Delava, Keiti Lopes Maestre, Carina Contini Triques, Fabiano Bisinella Scheufele, Veronice Slusarski-Santana and Mônica Lady Fiorese

4.1 Introduction

4.2

4.2.1

4.2.2

4.3 Films or Coatings Based on Proteins From Fish

4.3.1

4.3.2 Development of Protein-Based Films or Coatings

4.3.2.1 Fish Proteins and Processes for Obtaining Collagen/Gelatin and Myofibrillar Proteins

4.3.2.2 Development of Biodegradable and Bioactive Films or Coating

4.3.3 Development of Protein-Based Films or Coatings Incorporated With Additives and/or Plasticizers

4.3.3.1 Films or Coatings Incorporated With Organic Additives and/or Plasticizers and Their Applications

4.3.3.2 Films or Coatings Incorporated With Inorganic Additives and/or Plasticizers

Marcia Parente Melo da Costa and Ivana Lourenço de Mello Ferreira

5.1 Introduction

5.2 Biohydrogels: Superabsorbent Materials

5.3 Polysaccharides: Biopolymers from Renewable Sources

5.3.1

5.3.2

5.3.3

5.3.4 Carrageenans

5.4 Applications of Superabsorbent Biohydrogels (SBHs)

6 Bioplastics in Personal Protective Equipment

Tapia-Fuentes Jocelyn, Cruz-Salas Arely Areanely, Alvarez-Zeferino Juan Carlos, Martínez-Salvador Carolina, Pérez-Aragón Beatriz and Vázquez-Morillas Alethia

6.1 Introduction

6.2

6.3

6.2.2

6.3.2

6.2.1.4

6.2.1.5

6.2.2.1

6.2.2.2

6.2.2.3

6.2.2.4

6.3.1.1

6.3.1.2

6.3.1.3

6.3.2.1

6.3.2.2

6.4

6.4.1

6.4.2

6.4.3

6.5 International Standards Applied to Biodegradable Plastics and Bioplastics

6.6 Conclusions

8

8.7

Ahuja and Sanjeev Kumar Ujjain

Maria da Gloria C. Silva, Anderson O. de Medeiros and Leonie A. Sarubbo

Tuba Saleem, Ayesha Mahmood, Muhammad Zubair, Ijaz Rasul, Aansa Naseem and Habibullah Nadeem

18.4.4 Sugar Industry Waste (molasses) as Substrate for PHA Synthesis

18.7

18.4.7

18.7.1

19.3 Application of Plastic-Degrading Microbes

19.3.1

19.3.2

19.3.1.1

19.3.1.3

19.3.1.4

19.3.1.5

19.3.2.1

19.4

19.4.1

19.4.3

19.5

19.5.1

20 Paradigm Shift in Environmental Remediation

Biswajit Debnath, Saswati Gharami, Suparna Bhattacharyya, Adrija Das and Ankita Das

20.1

20.2

20.3

20.3.1

20.3.2

20.3.3

S. Bharadwaj, Vivek Dhand and Y. Kalyana Lakshmi

21.1

21.7.6

22

Mohammad Amir, Naushin Bano, Mohd. Rehan Zaheer, Tahayya Haq and Roohi

Elsa Cherian, Jobil J. Arackal, Jayasree Joshi T. and Anitha Krishnan V. C.

23.4 Synthesis of Biodegradable Pots 661

23.5 Effect of Biopots on Plant Growth and Quality 663

23.6 Quality Testing of Biodegradable Pots 664

23.7 Consumer Preferences of Biodegradable Pots 665

23.8 Future Perspectives 666

23.9 Conclusion 667 References 667

24 Applications of Biodegradable Polymers and Plastics

Parveen Saini, Gurpreet Kaur, Jandeep Singh and Harminder Singh

24.1 Introduction 674

24.2 Biopolymers/Bioplastics 675

24.3 Applications of Biodegradable Polymers/Plastics 677

24.3.1 Biomedical Applications 677

24.3.1.1 Biodegradable Polymers in the Development of Therapeutic Devices in Tissue Engineering 677

24.3.1.2 Biodegradable Polymers as Implants 678

24.3.1.3 Biobased Polymers as Drug Delivery Systems 679

24.3.2 Other Commercial Applications 679

24.3.2.1 Biodegradable Polymers as Packaging Materials 680

24.3.2.2 Biodegradable Plastics in Electronics, Automotives, and Agriculture 681

24.3.2.3 Biobased Polymer in 3D Printing 681

24.4 Conclusion 682 References 682

25 Biopolymeric Nanofibrous Materials for Environmental Remediation 687

Pallavi K.C. and Arun M. Isloor

25.1 Introduction 688

25.2 Fabrication of Nanofibers 689

25.3 Nanofibrous Materials in Environmental Remediation 691

25.3.1 Water Purification 691

25.3.2 Air Filtration 702

25.3.3 Soil-Related Problems 705

25.4 Conclusions 708 References 709

26

Aansa Naseem, Farrukh Azeem, Muhammad Hussnain Siddique, Sabir Hussain, Ijaz Rasul, Tuba Saleem, Arfaa Sajid and Habibullah Nadeem 26.1

26.3

26.4

26.7

26.8

Panchami H. R., Arun M. Isloor, Ahmad Fauzi Ismail and Rini Susanti 27.1

27.3.1

27.3.1.1

27.3.1.2

27.3.2 Mechanism of Bioflocculation

27.3.3 Some of the Examples for Protein Recovery Using Biodegradable Polymer

27.3.3.1 Chitosan as Flocculant

27.3.3.2

27.3.3.3

27.4 Recovery of Proteins by Aqueous Two-Phase System

27.5 Types of the Aqueous Two-Phase System and Phase Components

27.6 Recovery Process and Factors Influencing the Aqueous Two-Phase System

27.7

27.8

27.9

27.10

27.12.1

27.12.3

27.14

28.1

28.3

28.3.1

28.3.2 Biodegradable Semiconductors

28.4

29 Importance and Applications of Biodegradable Materials and Bioplastics From the Renewable Resources 789

Syed Riaz Ahmed, Fiaz Rasul, Aqsa Ijaz, Zunaira Anwar, Zarsha Naureen, Anam Riaz and Ijaz Rasul

29.1 Biodegradable Materials 790

29.2 Bioplastics 791

29.3 Biodegradable Polymers 794

29.3.1 Classification of Biodegradable Polymers 794

29.3.1.1 Gelatin 795

29.3.1.2 Chitosan 796

29.3.1.3 Starch 797

29.3.2 Properties of Bioplastics and Biodegradable Materials 797

29.4 Applications of Bioplastics and Biodegradable Materials in Agriculture 799

29.4.1 State-of-the-Art Different Applications of Bioplastics in Agriculture 800

29.4.1.1 Agricultural Nets 803

29.4.1.2 Grow Bags 803

29.4.1.3 Mulch Films 804

29.5 Applications of Microbial-Based Bioplastics in Medicine 805

29.5.1 Polylactones 805

29.5.2 Polyphosphoesters 805

29.5.3 Polycarbonates 806

29.5.4 Polylactic Acid 806

29.5.5 Polyhydroxyalkanoates 806

29.5.6 Biodegradable Stents 806

29.5.7 Memory Enhancer 807

29.6 Applications of Microbial-Based Bioplastics in Industries 808

29.6.1 Aliphatic Polyester and Starch 808

29.6.2 Cellulose Acetate and Starch 808

29.6.3 Cellulose and Its Derivative 808

29.6.4 Arboform 809

29.6.5 Mater-Bi 809

29.6.6 Bioceta 809

29.6.7 Polyhydroxyalkanoate 809

29.6.8 Loctron 810

29.6.9 Cereplast 810

29.7 Application of Bioplastics and Biodegradable Materials in Food Industry 811

29.7.1 Bioplastic and Its Resources 812

29.7.2 Food Packaging 812

29.7.3 Natural Polymers Used in Food Packaging 816

29.7.3.1 Starch-Based Natural Polymers 816

29.7.3.2 Cellulose-Based Natural Polymers 817

29.7.3.3 Chitosan or Chitin-Based Natural Polymers 817

29.7.4 Protein-Based Natural Polymers 818

29.7.4.1 Whey Protein 818

29.7.4.2 Zein 818

29.7.4.3 Soy Protein 818

29.7.5 Bioplastics Derived Chemically From Renewable Resources 819

29.7.5.1 Polylactic Acid (PLA) 819

29.7.5.2 Polyhydroxyalkanoate Composite 819

29.7.5.3 Polybutylene Succinate Composite 820

29.7.5.4 Furandicarboxylic Acid Composite 821

29.8 Application of Bioplastic Biomass for the Environmental Protection 821

29.8.1 Biodegradation of Bioplastics 822

29.8.2 Biodegradability and Environmental Effect of Renewable Materials 823

29.9 Conclusions and Future Prospects 825 References 825

Preface

Biodegradable materials have today become more compulsory due to an alarming environmental concern and growing demand for polymeric and plastic materials. Despite our sincere efforts to recycle used plastic materials, they ultimately tend to enter into the oceans. It is necessary, therefore, to ensure that these wastes do not produce any hazards in the future. This has made it urgent to replace the synthetic material with green material in almost all possible areas of application. In the field of medicine, biodegradable polymers are finding an immediate replacement to synthetic polymers as these materials are closest to humans. Poor management of large quantities of e-waste also attracts the application of biodegradable materials. The sudden growth of demand for online food delivery services created the need for packaging with green materials. Sooner or later, it is inedvitable these materials will find their way into almost every sphere of material application.

Biodegradable Materials and Their Applications covers a wide range of subjects and approaches starting with a general introduction of biodegradable material applications. Chapters focus on the development of various types of biodegradable materials with their applications in electronics, medicine, packaging, thermoelectric generations, protective equipment, films/coatings, 3D printing, disposable bioplastics, agriculture, and other commercial sectors. In biomedical applications, their use in the advancement of therapeutic devices, like temporary implants, tissue engineering, and drug delivery vehicles are summarized. This work is an indepth examination of the subject and it will be useful for environmentalists, engineers, faculty, students, researchers, and laboratory workers that are associated with biodegradable materials. The summaries of the work reported in the following 29 chapters are as follows:

Chapter 1 explains the necessity of the development of biodegradable materials in the electronics field. It reviews the list of suitable materials and

their properties to replace the conventional components. The improvement in the performance and the reduction in the origin of e-waste are also incorporated.

Chapter 2 focused on the synthesis and properties of various low-cost bio-composites/bio-nano composites which showed improved electrical/ ionic conductivity along with the thermoelectric behaviors and can be referred to as the active component in the thermoelectric generator.

Chapter 3 outlines the advances in biodegradable materials as a strategy to manage escalating volumes of e-waste from the electronics industry. The properties and novel applications of various biodegradable materials with the greatest potential are discussed with an emphasis on revealing the composition and working mechanism reported in the literature.

Chapter 4 presents a literature review on methods of obtaining proteins from fish waste materials and on the development of biodegradable and bioactive fish protein-based films or coatings. The incorporation of organic and inorganic additives and plasticizers can improve the functional and structural properties of materials.

Chapter 5 addresses biodegradable biohydrogels, a superabsorbent material based on polysaccharides. Properties of carboxymethylcellulose, chitosan, alginate, and carrageenan are detailed. Works on applications of superabsorbent biohydrogels are described. A panoramic overview of literature based on a bibliographic search in the ScienceDirect database from 2010 to 2021 is also presented.

Chapter 6 describes the use of biodegradable and bioplastic in personal protective equipment (PPE), the characteristics, and properties of the materials used to make them, the regulations applicable to this type of materials, as well as their protective efficiency against harmful external agents.

Chapter 7 focuses on the various applications and materials used for biodegradable protective films. Processing and fabrication of biodegradable-based protective films are also discussed in detail for industrial-level production. Moreover, the limitations in the use of biodegradable protective films in daily life applications are also explained in this chapter.

Chapter 8 discusses the plastic materials currently in use to make personal protective equipment. Sources of bioplastic and biodegradable plastics developed recently from plants and microbes are also discussed. Suggestions are made on how eco-friendly plastics can replace conventional plastics in the PPE.

Chapter 9 focuses on the cutting-edge technology of novel bioactive and biodegradable materials as essential components in modern dentistry.

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