循環型プラスチックパッケージングソリューションは、市場での採用が拡大

持続可能なパッケージング市場 2023-2033年

持続可能なパッケージング用途の再生プラスチックとバイオプラスチック。パッケージングのためのメカニカルリサイクリルとケミカルリサイクル分析。30種類の持続可能なパッケージング材料の10年間の市場予測と検証。


製品情報 概要 目次 価格 Related Content
持続可能なパッケージングソリューションは、市場圧力の加速に伴い、市場での採用が進んでいます。本レポートは、メカニカル再生プラスチック、ケミカル再生プラスチック、バイオプラスチックを含む30種以上の循環型パッケージング材料の包括的な検証と分析を提供しています。投資と業務提携を含む持続可能なパッケージング市場の主要動向分析により、読者に持続可能なパッケージング業界の先行きを解説します。また、持続可能なパッケージング材料の21種類の10年間予測を掲載し、この分野の現状把握、循環型資源利用に向けた将来の方向性を概説します。
「持続可能なパッケージング市場 2023-2033年」が対象とする主なコンテンツ
● 循環型経済とプラスチックのイントロダクション
● 持続可能なパッケージングの主要推進要因と障壁(例、政策、NGO、ブランド、消費者、価格、スタートアップの状況、性能等)の市場分析
● 持続可能なパッケージングソリューションのプラスチックのメカニカルリサイクリング
□包装用メカニカルリサイルの推進力と課題
□メカニカルリサイクルの技術進歩
● 持続可能なパッケージングソリューションのためのプラスチックのケミカルリサイクル
□溶媒抽出
□熱分解
□解重合
● バイオプラスチックとその他のバイオ系材料
□バイオ系合成ポリマー
□天然ポリマー
● 持続可能なパッケージング材料のベンチマーク評価
● 持続可能なパッケージングのためのその他のアプローチ(リサイクル性を考慮したデザインなど)
● 主要分野の持続可能なパッケージング材料の商業用途:
□食品包装
□食品サービス
□飲料
□輸送
□ホームケアとペットケア
□パーソナルケアと化粧品
● メカニカルリサイクリング、先進的リサイクリング、バイオプラスチックなどの21種の予測を網羅した持続可能なパッケージング材料の10年間詳細市場予測
 
「持続可能なパッケージング市場 2023-2033年」は以下の情報を提供します
  • PET、PE、PP、バイオプラスチックなどの持続可能なプラスチック包装の10年間市場予測
  • 既存のパッケージングが抱える問題点(特に多層包装の課題)
  • 持続可能なパッケージング市場の推進要因(法制度、ブランド、NGO、消費者)と主要課題検証
  • メカニカル・ケミカルリサイクリル方法の現状、課題、イノベーションの概要
  • 持続可能なパッケージングを実現する先進的材料、技術、リサイクル方法の開発動向
  • 主要FMCG企業、パッケージングメーカー、資材サプライヤーと新興企業による持続可能なパッケージングの業務提携と投資分析
  • 既存の合成ポリマー、先端バイオ系ポリマー、その他の先端バイオ系材料を含む持続可能な30以上の材料検証
  • 各種バイオプラスチックとバイオ系材料の有力企業と技術成熟度分析
  • パッケージングのメカニカル再生プラスチック、ケミカル再生プラスチック、バイオプラスチックの参入障壁とソリューション提言
  • 最新の持続可能なパッケージング材料の性能、現状のベンチマーク評価
  • リサイクル可能なデザインを含め持続可能性への代替的アプローチ検証
  • サステイナブルパッケージング分野の95社以上の新興企業の特定
  • 主要6分野(食品包装、食品サービス、飲料、輸送、ホームケアとペットケア、パーソナルケアと化粧品)の最新の持続可能な包装用途と有力企業
 
Advancing the circular economy with sustainable packaging
Creating a circular economy is an essential sustainability target for governments, brands, suppliers, and the public. A key driver is the risks that plastic consumption, which is expected to double globally by 2050, poses to the environment; not only is plastic waste overflowing in landfills, but a significant portion is mismanaged and leaks into the environment.
 
Addressing plastic waste pollution requires solutions from every sector, but an especially important industry is the packaging sector, which utilizes about one-third of annual plastics production. Packaging, especially for fast-moving consumer goods (FMCG), utilizes significant amounts of single-use plastics that quickly end up in the municipal waste stream. Therefore, sustainable packaging is a critical component needed to advance circularity. IDTechEx's latest market report, Sustainable Packaging Market 2023-2033, explores the sustainable materials, leading players, and technology trends driving the field and presents a forecast for the sustainable packaging market segmented into 21 different materials.
 
Source: IDTechEx
 
Mechanically recycled plastics
Mechanical recycling of plastics will be critical to pushing sustainability in the packaging sector forward. Mechanical recycling is the main source of recycled plastics, especially polyethylene terephthalate (PET), currently used by FMCG companies in products like beverage bottles and detergent containers. Not only does mechanical recycling prevent the further extraction of petroleum for virgin fossil-based polymers, but it is also the best end-of-life option for plastics in terms of carbon footprint.
 
As such, there is major market activity across the supply chain - from materials suppliers and recycling companies to packaging manufacturers and multinationals - to increase the recycled content of plastic packaging. IDTechEx predicts mechanical recycling will be the dominant source of sustainable plastics for packaging from 2023 to 2033. But as the latest IDTechEx report outlines, there are significant economic and technical problems preventing mechanically recycled plastics' usage in sustainable plastic packaging, such as contamination, recycled material prices, downcycling, and more, which many players are looking to address.
 
Chemically recycled plastics
Conventional mechanical recycling methods are the primary choice for producing recycled plastic, but given inherent issues in these methods, mechanically recycled plastics can have worse material properties than their virgin equivalents. This creates the problem of downcycling, which keeps recycled plastics from being used again in packaging; however, this is where advanced recycling enters the picture. The allure of advanced recycling methods, like solvent extraction, pyrolysis, and depolymerization, is that they use thermochemical reactions to allow used plastic waste to be made into "new" virgin plastic, circumventing the issue of downcycling. There is also potential for processing mixed plastics, including polyolefins like polyethylene (PE) and polypropylene (PP), another issue facing mechanical recycling.
 
For these reasons, materials suppliers and FMCG companies are investing in chemically recycled plastics, many of which will end up in sustainable plastic packaging. However, chemical recycling is not a magic bullet and faces economic and environmental barriers to adoption, which are explored in this IDTechEx report. Still, by 2030, chemical recycling will grow to become an important contributor to the sustainable packaging market.
 
Bioplastics and biobased materials
Yet, even if all the plastic produced every year was 100% recycled, there would still be a need for virgin feedstock to meet growing consumption. Bioplastics - plastics which are synthesized from biobased feedstocks - can replace incumbent fossil-based plastics here. Given their biobased origin, these plastics are a lower carbon footprint and sustainable option to incumbent fossil-based plastics.
 
Many biobased polymers, including biobased PET and PE, polyhydroxyalkanoates (PHAs), nanocellulose, and many others, are being explored by major materials players and start-ups for application in packaging. Other biobased materials, like non-wood plant fibers and mycelium, are seeing increasing attention for circular packaging solutions as well. IDTechEx's analysis of 95 start-ups operating in sustainable packaging identified over twenty different biobased materials with over US$4 billion in investment. With such market interest, IDTechEx forecasts that bioplastics will be a consistent contributor to sustainable packaging and decarbonization efforts.
 
Market analysis and IDTechEx sustainable packaging market forecast
Included in this IDTechEx report is extensive market analysis on the sustainable packaging market, from a materials, technology, players, and trends point-of-view. Additionally, the report segments the market by nine fossil-based polymers, eight bioplastics, and three sources of sustainable plastics, looking at the drivers and constraints of each segment. These segments are extrapolated in the 10-year forecast to explore each segments' current usage, potential for growth, and key players.
 
Key aspects of this report:
  • 10-year market forecasts for sustainable plastics packaging, including PET, PE, PP, and bioplastics.
  • Pain points presented by incumbent packaging, especially challenges with multi-material layered packaging.
  • Discussion of market drivers (legislation, brands, NGOs, the public) and key challenges for sustainable packaging.
  • Overview of status, challenges, and innovations for mechanical and chemical recycling methods.
  • Developments in advanced materials, technologies, and recycling methods enabling sustainable packaging.
  • Assessment of partnerships and investments in sustainable packaging by key FMCG companies, packaging manufacturers, material suppliers, and start-ups.
  • Discussion of over thirty materials for sustainable packaging, including established synthetic polymers, emerging biobased polymers, and other emerging biobased materials.
  • Analysis of players and technology readiness level for different bioplastics and biobased materials.
  • Barriers to entry and proposed solutions for mechanically recycled plastics, chemically recycled plastics, and bioplastics in packaging.
  • Benchmarking of emerging sustainable packaging materials by performance and current status.
  • Discussion of alternative approaches to sustainability, including design for recyclability.
  • Identification of over 95 start-ups operating in sustainable packaging.
  • Recent sustainable packaging applications and players in six main areas: food packaging, food service, beverages, shipping and transport, home and pet care, personal care and cosmetics.
Report MetricsDetails
Historic Data2017 - 2022
Forecast Period2023 - 2033
Forecast UnitsMillions metric tonnes
Regions CoveredWorldwide
Segments CoveredMechanically recycled plastics (PET, HDPE, LDPE, PP, other), chemically recycled plastics (PET, HDPE, LDPE, PP, other), bioplastics (PHA, biobased PE, biobased PET, PEF, TPS, PLA, PBT, other bioplastics)
IDTechEx のアナリストへのアクセス
すべてのレポート購入者には、専門のアナリストによる最大30分の電話相談が含まれています。 レポートで得られた重要な知見をお客様のビジネス課題に結びつけるお手伝いをいたします。このサービスは、レポート購入後3ヶ月以内にご利用いただく必要があります。
詳細
この調査レポートに関してのご質問は、下記担当までご連絡ください。

アイディーテックエックス株式会社 (IDTechEx日本法人)
担当: 村越美和子 m.murakoshi@idtechex.com
Table of Contents
1.EXECUTIVE SUMMARY
1.1.Packaging's role in increasing global plastics production
1.2.Market drivers for sustainable packaging
1.3.Sustainable packaging market segmentation
1.4.Opportunity for post-consumer recycled plastics in packaging
1.5.Opportunities for recycling in the polymer value chain
1.6.Complementary approaches for recycling
1.7.Drivers and restraints of mechanical recycling for packaging
1.8.Summary of chemical recycling approaches
1.9.Benchmarking of sustainable packaging plastics - virgin vs recycled petroleum plastics
1.10.Benchmarking of sustainable packaging plastics - fossil-derived plastics vs bioplastics
1.11.Notes on benchmarking of sustainable packaging plastics
1.12.Segmentation of sustainable packaging applications and players
1.13.Sustainable packaging start-up overview
1.14.Sustainable packaging market forecast
1.15.Recycled PET: the dominant sustainable plastic for packaging
1.16.Recycled HDPE and PP: growing in demand but facing key barriers for sustainable packaging
1.17.Recycled LDPE: little to no utilization in sustainable packaging
1.18.Evolution of mechanically and chemically recycled plastics for sustainable packaging
1.19.IDTechEx sustainable polymers portfolio
2.INTRODUCTION
2.1.List of acronyms
2.2.The circular economy
2.3.Packaging's role in increasing global plastics production
2.4.Plastic packaging materials
2.5.What is sustainable packaging?
2.6.Factors affecting packaging sustainability
2.7.Sustainable packaging market segmentation
3.MARKET ANALYSIS
3.1.Market drivers
3.1.1.Market drivers: government regulation on plastic use
3.1.2.Market drivers: Product producers, brands & retailers
3.1.3.Market drivers: Product producers, brands & retailers (2)
3.1.4.Market drivers: NGOs
3.1.5.Market drivers: Public
3.2.Sustainable packaging start-ups landscape
3.2.1.Investment interest in sustainable plastics technologies and packaging
3.2.2.Sustainable packaging start-up overview
3.2.3.Sustainable packaging start-ups by country of origin
3.2.4.Sustainable packaging start-ups by material
3.2.5.Sustainable packaging start-ups with the most investment
3.2.6.Sustainable packaging start-ups - materials related
3.2.7.Sustainable packaging start-ups - other
3.3.Barriers facing sustainable packaging
3.3.1.Impact of oil price on the competitiveness of plastic alternatives
3.3.2.The Green Premium
3.3.3.Rising feedstock prices
3.3.4.Other factors impacting the uptake of sustainable packaging materials
4.INCUMBENT PACKAGING MATERIALS
4.1.Factors affecting packaging material selection
4.2.Plastics for packaging
4.3.Paper and paperboard for packaging
4.4.Metals for packaging
4.5.Glass for packaging
4.6.Applications of incumbent packaging materials
4.7.Multi-material layered packaging
4.8.Materials for multi-layered packaging
4.9.End-of life for multi-material layered packaging
4.10.Further issues affecting multi-material layered packaging
4.11.Recycling of multi-material layered packaging
4.12.More sustainable alternatives to multi-material layered packaging
5.SUSTAINABLE PACKAGING MATERIALS
5.1.Introduction to plastics recycling
5.1.1.The four types of recycling: Process definitions
5.1.2.Understanding end-of-life plastics
5.1.3.Why are plastic recycling rates so low?
5.1.4.Recycling collection methods and facilities
5.1.5.Single vs multiple stream recycling
5.1.6.Opportunities for recycling in the polymer value chain
5.1.7.Global production of post-consumer recycled plastics
5.1.8.Opportunity for post-consumer recycled plastics in packaging
5.2.Mechanical recycling of plastics for packaging
5.2.1.Prominence of mechanical recycling for plastics
5.2.2.Primary mechanical recycling
5.2.3.Secondary mechanical recycling: collection and sorting
5.2.4.Secondary mechanical recycling: decontamination
5.2.5.Secondary mechanical recycling: melt and extrusion
5.2.6.The problem of downcycling
5.2.7.Contributors to downcycling
5.2.8.Recycled polymers in the food packaging industry
5.2.9.Approaches to improve secondary mechanical recycling
5.2.10.Invisible barcodes to improve plastic recycling
5.2.11.NEXTLOOPP: recycled food-grade polypropylene
5.2.12.Berry Global: recycled food-grade polypropylene
5.2.13.Drivers and restraints of secondary mechanical recycling for packaging
5.2.14.Chemical companies offering mechanically-recycled plastics for packaging
5.2.15.Recycling companies offering mechanically-recycled plastics for packaging
5.2.16.Partnerships to advance mechanically-recycled plastic production
5.2.17.Commercial applications of mechanically-recycled plastics
5.3.Mechanical recycling for packaging: key plastics
5.3.1.Mechanically recycling key polymer types
5.3.2.Mechanical recycling PET for packaging
5.3.3.Mechanical recycling PE for packaging
5.3.4.Mechanical recycling PP for packaging
5.3.5.Mechanical recycling PS for packaging
5.4.Advanced recycling of plastics for packaging
5.4.1.Chemical recycling in the polymer value chain
5.4.2.Complementary approaches for recycling
5.4.3.Market drivers for chemical recycling
5.4.4.Summary of chemical recycling approaches
5.4.5.Dissolution: technology overview
5.4.6.Dissolution plant overview
5.4.7.Pyrolysis: technology overview
5.4.8.Pyrolysis of plastic waste - process diagram
5.4.9.Comparison of pyrolysis processes
5.4.10.Contamination in pyrolysis
5.4.11.Depolymerisation: technology overview
5.4.12.Depolymerisation of PET
5.4.13.Enzyme technology for chemical recycling
5.4.14.Gasification: technology overview
5.4.15.Scope for gasification processes in a circular economy
5.4.16.Closing the loop on chemical recycling
5.4.17.Environmental viability of chemical recycling
5.4.18.Alternative recycling routes for MSW
5.4.19.Partnerships for chemically recycling mixed plastics
5.4.20.Partnerships for chemically recycling PET and PS
5.4.21.Chemical recycling for packaging
5.5.Chemical recycling for packaging: key plastics
5.5.1.Technology status by polymer feedstock
5.5.2.Chemical recycling PET for packaging
5.5.3.Chemical recycling PE for packaging
5.5.4.Chemical recycling PP for packaging
5.5.5.Chemical recycling PS for packaging
5.6.Alternatives to petroleum-based plastics for packaging
5.6.1.Bioplastics for packaging: overview
5.6.2.Synthetic biobased polymers
5.6.3.Naturally occurring biobased polymers
5.6.4.Other biobased materials
5.7.Recycled paper for packaging
5.7.1.Recycled paper for sustainable packaging
5.7.2.Innovations for recycled paper packaging
6.CARBON CAPTURE DERIVED MATERIALS FOR PACKAGING
6.1.What is Carbon Capture, Utilization and Storage (CCUS)?
6.2.CO₂ utilization for sustainable packaging
6.3.CO2-derived linear-chain polycarbonates
6.4.CO2-derived chemical precursors
6.5.Players in CO₂-derived chemicals by end-product
6.6.CO2-derived PHB for packaging: Newlight Technologies
6.7.CO2-derived PET and PE for packaging: LanzaTech
7.OTHER APPROACHES TO SUSTAINABLE PACKAGING
7.1.Design for recyclability
7.2.Reusable packaging & return programs
7.3.Reduction of packaging material use
7.4.Additives and coatings that improve sustainability
8.APPLICATIONS OF SUSTAINABLE MATERIALS IN PACKAGING
8.1.Overview
8.1.1.Segmentation of sustainable packaging applications
8.2.Sustainable food packaging
8.2.1.Players active in sustainable food packaging
8.2.2.Examples of commercial sustainable food packaging
8.3.Sustainable foodware and food service products
8.3.1.Players active in sustainable foodware and food service products
8.3.2.Examples of commercial sustainable foodware and food service products
8.4.Sustainable beverage packaging
8.4.1.Players active in sustainable beverage packaging
8.4.2.Examples of commercial sustainable beverage packaging
8.5.Sustainable packaging for shipping and transport
8.5.1.Players active in sustainable packaging for shipping and transport
8.5.2.Players active in sustainable packaging for shipping and transport: split by application
8.5.3.Examples of commercial sustainable packaging for shipping and transport applications
8.6.Sustainable packaging for home and pet care products
8.6.1.Players active in sustainable packaging for home and pet care products
8.6.2.Examples of commercial sustainable packaging for home and pet care products
8.7.Sustainable packaging for personal care and cosmetics
8.7.1.Players active in sustainable personal care and cosmetics packaging
8.7.2.Examples of commercial sustainable packaging for personal care and cosmetics
9.SUSTAINABLE PACKAGING FORECASTS
9.1.Forecast methodology and scope
9.2.Sustainable packaging market forecast
9.3.Sustainable packaging forecast segmented by material
9.4.Recycled PET: the dominant sustainable plastic for packaging
9.5.Recycled HDPE and PP: growing in demand but facing key barriers for sustainable packaging
9.6.Recycled LDPE: little to no utilization in sustainable packaging
9.7.Bioplastics for sustainable packaging market forecast
9.8.Sustainable packaging market forecast segmented by process
9.9.Evolution of mechanically and chemically recycled plastics for sustainable packaging
10.COMPANY PROFILES
10.1.Apeel
10.2.Avantium
10.3.Biomer
10.4.Bluepha
10.5.Borealis
10.6.Danimer Scientific
10.7.Ecomann
10.8.Ecovative
10.9.Footprint
10.10.Helian Polymers
10.11.Kaneka
10.12.LanzaTech
10.13.Licella
10.14.Newlight Technologies
10.15.Novamont
10.16.Origin Materials
10.17.Polyferm Canada
10.18.RWDC Industries
10.19.TemperPack
10.20.TIPA
10.21.TotalEnergies Corbion PLA
10.22.Weidmann Fiber Technology
10.23.Zume
11.APPENDIX
11.1.Sustainable packaging forecast
11.2.Sustainable packaging forecast - segmented by process
11.3.Bioplastics for sustainable packaging market forecast
 

価格および注文方法

持続可能なパッケージング市場 2023-2033年

£$¥
電子版_PDF(ユーザー 1-5名)
£5,650.00
電子版_PDF(ユーザー 6-10名)
£8,050.00
電子版_PDFおよびハードコピー1部(ユーザー 1-5名)
£6,450.00
電子版_PDFおよびハードコピー1部(ユーザー 6-10名)
£8,850.00
電子版_PDF(ユーザー 1-5名)
€6,400.00
電子版_PDF(ユーザー 6-10名)
€9,100.00
電子版_PDFおよびハードコピー1部(ユーザー 1-5名)
€7,310.00
電子版_PDFおよびハードコピー1部(ユーザー 6-10名)
€10,010.00
電子版_PDF(ユーザー 1-5名)
$7,000.00
電子版_PDF(ユーザー 6-10名)
$10,000.00
電子版_PDFおよびハードコピー1部(ユーザー 1-5名)
$7,975.00
電子版_PDFおよびハードコピー1部(ユーザー 6-10名)
$10,975.00
電子版_PDF(ユーザー 1-5名)
¥900,000
電子版_PDF(ユーザー 6-10名)
¥1,260,000
電子版_PDFおよびハードコピー1部(ユーザー 1-5名)
¥1,020,000
電子版_PDFおよびハードコピー1部(ユーザー 6-10名)
¥1,380,000
電子版_PDF(ユーザー 1-5名)
元50,000.00
電子版_PDF(ユーザー 6-10名)
元72,000.00
電子版_PDFおよびハードコピー1部(ユーザー 1-5名)
元58,000.00
電子版_PDFおよびハードコピー1部(ユーザー 6-10名)
元80,000.00
Click here to enquire about additional licenses.
If you are a reseller/distributor please contact us before ordering.
お問合せ、見積および請求書が必要な方はm.murakoshi@idtechex.com までご連絡ください。

レポート概要

スライド 240
企業数 23
フォーキャスト 2033
ISBN 9781915514585
 

コンテンツのプレビュー

pdf Document Webinar Slides - EOY 2023
pdf Document Webinar Slides
pdf Document Sample pages
 
 
 
 

Subscription Enquiry