The supply chain plays an important role in daily life, and its traceability ensures product quality and safety. Therefore, an efficient and reliable solution to improve supply chain traceability is urgently needed. Because of its advantages of being decentralized, tamper-proof, and transparent, the emerging blockchain technology should address the problems of unreliable data and low tracking efficiency in traditional traceability systems. This paper explores blockchain-based supply chain traceability solutions, reviews recent research, and identifies challenges. First, the basics of blockchain are introduced, and the traditional traceability model and stakeholder needs are described. Then, the existing publications and enterprise applications are reviewed and analyzed in detail. Using blockchain is found to bring many benefits. It is also found that the current academic solutions are mostly based on mainstream blockchain platforms and lack specific and comprehensive evaluation. Finally, challenges and future research questions are discussed. Future research could focus on designing targeted consensus mechanisms, designing appropriate access control, the role of regulators in the supply chain, etc. This review shows that blockchain has great potential to address traceability issues, but many challenges remain.
The circular economy (CE) has emerged as a paradigm to protect the environment and the well-being of future generations. In parallel, Blockchain technology (BC) has emerged as a critical enabler for accelerating the transition toward a CE. In order to understand and summarize prior research on the role of BC in the CE, we conducted a systematic literature review (SLR) of 70 seminal articles published before July 2022. Six main themes emerged: a) CE approaches and practices, b) BC and the integration of the Internet of Things (IoT), c) sustainable supply chain management, d) BC and the CE in the COVID-19 era, e) sector-specific BC applications, and f) barriers to BC adoption in the CE. Furthermore, we develop a comprehensive framework that integrates stakeholders, strategies and practices, industrial sectors and a BC-enabled CE.
Rajendra S. Chaudhari, S. Mahajan, Santosh B. Rane, Rajeev Agrawal
Climate change poses a real risk, as does a shortage of resources to accommodate the world's rising population. Every nation is trying to produce maximum without caring for the environment. As a result, the circular economy (CE) is critical to the long-term sustainability of society, business and the environment. Government and policymakers are forcing industries and organizations to adopt or establish CE in their businesses to protect the environment. However, the concept of CE is unclear, and there are various hurdles and barriers to adopting a CE in industries and organizations. For a sustainable environment, CE barrier management plays a crucial role. This paper aims to explore and prioritize barriers to establishing a CE. A detailed methodological literature review is carried out to explore the twenty-nine barriers in CE. The various barriers to CE are prioritized using the Multi-criteria decision-making methods Order of Preference by Similarity to Ideal Solution (TOPSIS). Based on the TOPSIS barrier of increased emission and pollution while recycling was found to be a top rank and the barrier of tedious environmental regulations and lack of government support was found to be at the lowest rank. The top priorities are the barriers to increasing emission and pollution while recycling, radically changing production, and lack of public participation in using recycled products. The Blockchain-IoT architecture and strategies are developed to mitigate all these barriers. As in CE, resources are not ending as these are recyclables since products are made to last several life cycles. Product's lifespans are extended by maintaining, repairing and re-manufacture to reduce carbon footprints in the environment. This barrier ranking will help supply chain professionals and business executives analyze the failure to implement CE in industries. Strategies and architecture based on blockchain-IoT will also help in mitigating the barrier in CE. This study will give new dimensions for the adaption of CE in industries. CE will create sustainable ecosystems for soil, air and water. These sustainable ecosystems provide a long and healthy life for all living things on this planet.
Milena Mota Costa, JoĂŁo Felix Barreto Neto, Elaine Pinto Varela Alberte, Ălex Pires Carneiro
Abstract There is a current lack of management tools that guarantee control and traceability of actions taken by the generator of construction and demolition waste (CDW). Furthermore, the reinsertion of recycled CDW into productive cycle is necessary to foster a circular economy in construction sector. To address these challenges, this study builds a novel blockchain-based information management framework for CDW management in construction, which extends the applications of blockchain for improving circular economy in the sector. Using design science research as a methodological research strategy, this study presents and analyses a blockchain framework and its development processes. The framework performance was evaluated through simulation and quantitative and qualitative indicators. Through a SaaS (Software as a Service) concept, the system allows strengthens the connection between stakeholders looking for sustainable solutions for CDW management. These solutions are independent of the size or segment of the company and allow the creation of business opportunities within the industry itself that provide expertise to foster the circular economy such as reverse logistics, servitization, and industrial symbiosis.
Researchers estimate that more than 8.3 billion tonnes of plastic have been produced since the early 1950s; however, only 9% of all plastic waste ever produced has been recycled. In this article, we propose a plastic credit driven system consisting of a recyclability index (RI) and plastic credit to impel plastic recycling and increase the quality of recyclable plastics through a market self-regulation mechanism. The RI is designed to evaluate the recyclability value of different plastic products based on their material compositions. The plastic credit, defined by the quantitative relation between the RI and product information, can be issued or traded by system stakeholders. Instead of setting rigid industry standards to regulate plastic quality, we construct a governance community among industry participants using blockchain-enabled smart contracts to self-regulate and monitor plastic production and trading. The proposed system is constructed on a consortium blockchain and a public blockchain to negotiate the RI, issue credits, and trade credits using smart contracts. Through the overall system performance analysis, the experimental results demonstrate that the designed plastic credit system can promote a demand shift toward plastic products with higher plastic recyclability and achieve a lightweight operation for resource requirements and system maintenance.
Dilupa Nakandala, Yung Po Tsang, H.C.W. Lau, C.K.M. Lee
In view of increasing supply chain disruption events, for example the ChinaâUnited States trade war, the COVID-19 pandemic, and the RussiaâUkraine war, the complexity and dynamicity of global freight management keeps increasing. To build a resilient and sustainable supply chain, industrial practitioners are eager to systematically revamp the freight management decision process related to the selection of carriers, shipping lanes, and third-party logistics service providers. Therefore, this study aims at strengthening decision-making capabilities for global freight management, in which an industrial blockchain-based global freight decision framework (IB-GFDF) is proposed to incorporate consortium blockchain technology with the Bayesian best-worst method. Through the blockchain technology, pairwise comparisons can be conducted over the international freight network in a decentralized and immutable manner, and thus, a secure and commonly agreed-on pairwise comparison dataset is acquired. Subsequently, the pairwise comparison dataset with multi-stakeholder opinions is analyzed using the Bayesian best-worst method in order to prioritize the selection decision criteria related to carriers, shipping lanes, and 3PL service providers for global freight management. To verify the methodological feasibility, a case study of an Australian agricultural supply chain firm was conducted to support the development end-to-end (E2E) supply chain solutions originated from Australia. It was found that port infrastructure, ports of call and communication effectiveness were the major criteria for the selection decision, which can be emphasized in future global freight collaboration. In addition, an immutable and append-only record of pairwise comparisons can be established to support the visibility of time-varying stakeholdersâ preferences.
Despite the large quantities of secondary materials flowing within the built environment, their actual volume and respective waste management processes are not accurately known and recorded. Consequently, various sustainability and material efficiency policies are not supported by accurate data and information-reporting associated with secondary materialsâ availability and sourcing. Many recent studies have shown that the integration of digital technologies such as city information management (CIM), building information modeling (BIM), and blockchain have the potential to enhance construction waste management (CWM) by classifying recycled materials and creating value from waste. However, there is insufficient guidance to address the challenges during the process of CWM. Therefore, the research reported in this paper aims to develop a blockchain-enhanced construction waste information management conceptual framework (BeCW). This paper is the first attempt to apply the strengths of integrated information-management modeling with blockchain to optimize the process of CWM, which includes a WasteChain for providing a unified and trustworthy credit system for evaluating construction-waste-recyclability to stakeholders. This is enabled through the use of blockchain and self-executing smart contracts to clarify the responsibility and ownership of the relevant stakeholders. As a result, this study provides a unified and explicit framework for referencing which quantifies the value-contribution of stakeholders to waste-recovery and the optimization of secondary construction materials for reuse and recycling. It also addresses the issue of sustainable CWM through information exchange at four levels: user, application, service, and infrastructure data levels.
With the increasing popularity of new energy vehicles (NEVs), a large number of automotive batteries are intensively reaching their end-of-life, which brings enormous challenges to environmental protection and sustainable development. This paper establishes a closed-loop supply chain (CLSC) model composed of a power battery manufacturer and a NEV retailer. The benchmark scenario of CLSC members without blockchain technology is analyzed, and the optimal recycling strategy of the manufacturer and retailer using traceability information based on blockchain technology is discussed. We generate our findings from three aspects, as follows: the manufacturer or retailer is more willing to take the responsibility of recycling when the proportion of retired batteries that can be used in echelons is relatively high. Meanwhile, when the recycling cost is large, both manufacturers and retailers should adopt blockchain technology to obtain greater profits. Furthermore, with the improvement of traceability information transmission efficiency, a higher profit growth rate will be achieved.
Abstract From the environmental perspective, efficient plastic utilization and its recyclability become significant issues that need to be resolved for deploying urban and sustainable technologies. It is estimated that approximately 400 million tons of plastic are produced each year for different applications. This number will be doubled by 2050, which is a serious problem. The primary issue that arises in a recycling process is associated with optimum supply chain management. The comprehensive and transparent supply chain methodologies will help stockholders to make conclusive policies and precise strategies. Transparency in supply chain management assists in captivating planning, pricing, purchasing, and inventory management decisions. Environmental sustainability requires recycling, which should have innovative concepts like Artificial Intelligence (AI) and Blockâchain Technology. Manual methods of sorting and segregating the waste have outdated and not much efficient. The inclusion of AI and Blockchain Technology brought a revolution by increasing the efficiency and accuracy of the recycling process. This critical review focused on recycling plastics and plastic waste using AI and Blockchain Technology. Various plastic regulation policies and AI utilization for plastic recycling are discussed. An overview of the blockchain and its classification for waste management or plastic recycling has been discussed. The utilization of Blockchain Technology for a plastic circular economy, its types, and critical benefits has also been systematically demonstrated.
With the continuous convenience of life, logistics has become an indispensable existence in life. Logistics application, such as the southern banana transportation to the country, major cities can buy all the year round; Xinjiang ha honey melon, Ningxia white orchid melon, northeast rice, Tianjin small station rice are not seasonal supply market. However, with the increasing frequency of logistics activities, its damage to natural resources and ecological environment is becoming more and more serious. The waste produced in logistics is increasing day by day, which puts great pressure on the environment. Such as steel slag, industrial waste water, waste computers, waste batteries and other kinds of inorganic waste. Goods return is the most important activity in the green reverse logistics. Because reverse logistics is a kind of logistics activity including product return, logistics replacement, item reuse, waste disposal, reprocessing, repair and remanufacturing and other processes. Returns are the key part of it. In order to ensure the goods, return to the manufacturer and get good disposal, it is necessary to record the whole process information of the goods from the factory to the customer. Blockchain is a chain composed of one block after another. Each block holds certain information in each block, which are connected into chains in their respective chronological order. Based on this, this paper proposes a sustainable development strategy of green reverse logistics based on blockchain. In the strategy research, based on the characteristics of decentralization, non-tampering and high information security of blockchain technology(BT), this paper proposes a commodity traceability scheme based on blockchain. In this traceability scheme, this paper uses the structure of Merkel tree to design a license chain to store detailed commodity traceability information, and stores the Merkel tree root node of the license chain block in the public chain, forming a âdouble chainâ structure of commodity traceability system. The simulation analysis shows that the traceability information stored in the license chain can use the high security of the public chain to ensure the security of information. Compared with the traditional blockchain, the double chain structure designed in the article, has a larger throughput, which can trace the source of the product to the manufacturer, ensure that the goods can be returned to the manufacturer for further processing, reduce the generation of waste in the logistics, and provide a guarantee for promoting the sustainable development of green reverse logistics.
Š 2019 River Publishers. Blockchain technology and Internet of Things (IoT) are two of the most popular technologies today. IoT is an interconnection of devices that can communicate with each other. It can help create smart solutions that can enhance the quality of life of people. Likewise, blockchain is distributed database systems that promise high level of security and availability of data with least transaction overhead. In this paper, we attempt to bring together these two technologies to develop a smart waste management system. The scope of implementation of such smart solutions to real-life problems is limited by the lack of proper payment infrastructure that can support micropayments in return of services. Current financial systems have problems dealing with micropayments due to large overhead cost of transactions. Blockchain technology could be a reasonable solution to overcome such a problem. It can help lower the transaction cost and time thus lowering cost of services in general, which can specially impact developing countries. The proposed smart waste management (SWM) system uses latest development in blockchain like smart contracts, decentralized autonomous organization, and its own cryptocurrency to handle the investment and service charges while it uses simulated smart garbage bin with QR-reader that communicates to the central server using MQTT, a popular IoT protocol. Furthermore, a Telegram Bot running in telegram messaging application helps user interact with the SWM system. Measurement of transaction times for blockchain in two different networks, i.e., a private network and a public test network provides an outline of resource allocation and speed of transaction using blockchain.
Peter M. Resch, Christian Schroeder, A. Pourmovahed, Kristy Brinker Brouwer
Since the anonymous person or group known as Satoshi Nakamoto created Bitcoin in 2008, interest in the cryptocurrency has grown exponentially. In the past 14 years, thousands of additional cryptocurrencies have been created, some still active while others have faded into obscurity. Investors have flocked to cryptocurrencies for a variety of reasons from technology to decentralization to a hedge against inflation to simply chasing profits. For all the proponents that Bitcoin and other cryptocurrencies have, they also have their share of critics. Recently, many people around the world have criticized cryptocurrencies for the amount of energy that they consume for new coins to be mined. This article aims to assess current data regarding energy usage for mining cryptocurrencies as well as, understand what actions are being taken to reduce the carbon footprint of these cryptocurrency mining activities around the world.
The implementation of measures to limit electricity consumption in many provinces of China has caused coal prices to rise irrationally, further aggravating the financing problems of small and medium-sized enterprises in the supply chain. Small and medium-sized enterprises lacking funds cannot effectively participate in the green transformation and development of the coal industry, which slows down the sustainable development process of the coal industry. Under the current background of low-carbon advocacy, blockchain technology can reasonably allocate resources and efficiently process information, thereby providing a solution for this financing problem. This paper first proposes a coal accounts receivable financing model based on blockchain technology, then builds a coal accounts receivable financing system dominated by ports through blockchain technology. Finally, the Stackelberg yieldâbenefit model is used to analyze the income function of each participant in the process of accounts receivable financing. The results show that the use of blockchain technology can reduce the financing condition of financial institutions and improve the maximum income of cooperative enterprises in the chain while solving the financing problems of small and medium-sized enterprises in the coal supply chain. This study provides practical significance and theoretical value for promoting the transformation and upgrading of coal enterprises and accelerating the opening of the sustainable development model of the coal industry.
The textile sector accounts for the fourth-highest usage of primary raw materials and water (after food, housing, and transport), the second-highest usage of land, and the fifth highest Green House Gases (GHG) emissions (EEA, 2017). While Life Cycle Assessment (LCA) has been widely used to assess the environmental impact of fashion, most studies are constrained by the lack of reliable data. Blockchain technology may enable better traceability by making origin and journey more transparent. The potential to integrate LCA and blockchain has been discussed in other sectors, but specific protocols in the fashion sector are largely missing. This study aims to address this by a) exploring the use of LCA to measure the impact reduction potential of circular strategies and b) proposing a protocol for the integration of LCA and BC to accurately assess circular practices. Using leather handbags as a case study, an LCA study is conducted comparing two circular scenarios against a baseline to quantify potential benefits from circular strategies. Subsequently, it builds a blockchain-based LCA framework to unleash circularity opportunities through enhanced traceability and data sharing. Results point to substantial environmental benefits from the circular strategies, for example, circular scenario 2 (reuse markets/second-hand leather bag) was estimated to cause between 34.8% and 53.8% lower impacts while circular scenario 1 (leather alternative) contributed to impact reduction of more than 35% of the impacts in most impact categories (10 out of 18). The results also highlight the contribution of blockchain technology to enable traceability and reliable data for identification of environmental hotspots and accurate quantification of circular potential.
As three-dimensional (3D) printing technology is widely used, security issues have arisen, especially in the terminal parts of automobiles, aircraft, and 3D-printed military equipment. If the original design models or the STL (stereolithography) files are hacked or tampered, severe consequences can be anticipated. In this paper, we propose a demonstration to use a high-throughput blockchain to store the âfingerprintsâ of the 3D model and verify the âfingerprintsâ before printing to prevent illegal tampering. Relying on the tamper-resistant features of blockchain, the security of the model and the credibility of the terminal components can be ensured. The combination of blockchain and 3D printing will help people to build a trusted manufacturing environment and realize a more flexible manufacturing for future industry.
Open access
Physical Unclonable Functions (PUFs) and Hardware Security
Additive Manufacturing and 3D Printing Technologies
Adopting a circular economy (CE) has rapidly emerged among policymakers and business community stakeholders to promote material circularization and ensure sustainable development. While the inclination for a paradigm shift away from the linear economy is evident, many challenges have been quoted in the literature regarding its implementation. Lately, it has become common to propose Information and Communication Technologies (ICT)-based approaches to address these challenges. However, they do not question the practicality of the solutions in the context of CE. This paper aims to find an appropriate digital solution for CE implementation, which is not possible without a complete understanding of the existing challenges. A thorough literature review broadly classified the challenges under five barrier categories: Technological, Financial, Infrastructural, Institutional, and Societal, which was followed up with an investigation into the failure of ICT solutions to address CE challenges. Among the various technologies, blockchain and smart contract technologies show some promise as data-driven decision-making tools; however, they are not without their limitations when applied in the context of CE. This perspective explores the role of blockchain smart contract technology-scape in overcoming CE challenges and presents a circular economy blockchain (CEB) architecture development. The findings suggest that CEB may enable CE business models that improve trust and transparency in supply-chain networks, shared and performance economy platforms, stakeholder participation, and governance and management of organizations. Ultimately, this study highlights critical areas for research and development for the blockchainification of CE.
Abstract In todayâs world, 96% of all goods depend on chemicals. Chemical industry plays vital role in supply chain. Chemical supply chain consists of multiple stakeholders including raw material suppliers to end user customers. Based on regulations, several product documents are needed to be supplied with the chemicals till the end of the life cycle. Blockchain based document traceability offers a viable solution to create a decentralized distributed shared platform for a secure, immutable, transparent, permanent, trustworthy, and accountable system for all the stakeholders involved. In this paper, an overview of the document traceability, current challenges and envisage how Blockchain and smart contracts address those challenges are presented. Based on the analysis, it is proposed to use using Hyperledger Fabric, an open-source private blockchain to meet the document traceability requirements such as security, privacy, scalability, authentication, and authorization. The proposed Blockchain architecture provides a feasible solution to build and deploy an end-to-end decentralized application in the chemical supply chain industry for document traceability.
With the fast development of the industrial Internet, its interconnectivity poses new challenges for the cooperation of industrial entities. Cooperation among these entities is built on trust, and trust is based on high-quality industrial products at reasonable prices. A traceability system can play an essential role in objectively reflecting the production process and promoting this trust. However, traditional traceability systems often have data privacy issues. Because traceability data are collected or generated during the production process (namely, production-related data), they could be considered privacy data. Several researchers have introduced privacy protection schemes into the traceability system, such as authentication or encryption. Nevertheless, when a privacy protection scheme is established, the original data are disclosed to the legal user of the system, but the data may still be leaked intentionally or unintentionally. Except for data privacy issues, a traditional traceability system can be vulnerable to network attacks, data unavailability, and reliability issues. The authors conducted a study to overcome these shortcomings, and this paper reports the results. We built a traceability prototype system using a blockchain protocol and a zero-knowledge proof method. First, we built a blockchain to record key production process data, aiming to maintain data reliability and availability. Second, through an analysis of traceability purpose using production knowledge, the traceability purpose could be divided into multiple provable statements. By introducing privacy protection through a zero-knowledge proof, the traceability process was converted to proving relative statements. Finally, the statements were validated by a smart contract that provided openness and reliability during the traceability process. Analysis has shown that our approach could meet the requirements for high security and privacy. In addition, the paper also discusses the calculation cost of the traceability process to show our workâs viability. The traceability system described in this paper creates new possibilities for constructing a healthy and reliable trust relationship between production entities to provide further support in the development of the industrial Internet.
Advances in information technology (IT) and operation technology (OT) accelerate the development of manufacturing systems (MS) consisting of integrated circuits (ICs), modules, and systems, toward Industry 4.0. However, the existing MS does not support comprehensive identity forensics for the whole system, limiting its ability to adapt to equipment authentication difficulties. Furthermore, the development of trust imposed during their crosswise collaborations with suppliers and other manufacturers in the supply chain is poorly maintained. In this paper, a trust chain framework with a comprehensive identification mechanism is implemented for the designed MS system, which is based and created on the private blockchain in conjunction with decentralized database systems to boost the flexibility, traceability, and identification of the IC-module-system. Practical implementations are developed using a functional prototype. First, the decentralized application (DApp) and the smart contracts are proposed for constructing the new trust chain under the proposed comprehensive identification mechanism by using blockchain technology. In addition, the blockchain addresses of IC, module, and system are automatically registered to InterPlanetary File System (IPFS), individually. In addition, their corresponding hierarchical CID (content identifier) values are organized by using Merkle DAG (Directed Acyclic Graph), which is employed via the hierarchical content identifier mechanism (HCIDM) proposed in this paper. Based on insights obtained from this analysis, the trust chain based on HCIDM can be applied to any MS system, for example, this trust chain could be used to prevent the counterfeit modules and ICs employed in the monitoring system of a semiconductor factory environment. The evaluation results show that the proposed scheme could work in practice under the much lower costs, compared to the public blockchain, with a total cost of 0.002094 Ether. Finally, this research is developed an innovation trust chain mechanism that could be provided the system-level security for any MS toward Industrial 4.0 in order to meet the requirements of both manufacturing innovation and product innovation in Sustainable Development Goals (SDGs).
Open access
Blockchain Technology Applications and Security
Physical Unclonable Functions (PUFs) and Hardware Security
Abstract Blockchain operates on a highly secured framework, and its decentralized consensus has benefits for supply chain sustainability. Scholars have recognized the growing importance of sustainability in supply chains and studied the potential of blockchain for sustainable supply chain management. However, no study has taken stock of high-quality research in this area. To address this gap, this paper aims to provide a state-of-the-art overview of high-quality research on blockchain for sustainable supply chain management. To do so, this paper conducts a systematic literature review using a bibliometric analysis of 146 high-quality articles on blockchain for sustainable supply chain management that have been published in journals ranked âA*â, âAâ, and âBâ by the Australian Business Deans Council and retrieved from the Scopus database. In doing so, this paper unpacks the most prominent journals, authors, institutions, and countries that have contributed to three major themes in the field, namely blockchain for sustainable business activities, decision support systems using blockchain, and blockchain for intelligent transportation system. This paper also reveals the use of blockchain for sustainable supply chain management across four major sectors, namely food, healthcare, manufacturing, and infrastructure, and concludes with suggestions for future research in each sector.
This paper considers a dynamic platform-based, closed-loop supply chain consisting of a manufacturer and an online platform. As an online distributor of the manufacturer, the platform expands the market scale by exerting the platform power. At the same time, to solve the problem of inconsistency between the actual recycling amount and the theoretical recycling amount in the recycling process of waste electronic products, the whole-process supervision of waste products is carried out with the help of blockchain technology, which is difficult to tamper with and is traceable. With the help of differential game theory, four differential game models of manufacturer recycling and platform recycling with and without blockchain are established. The state feedback strategies are derived from Bellmanâs continuous dynamic programming theory. Through analytical results and comparative analysis, the adoption conditions of blockchain and the impact of blockchain on the selection of recycling models are obtained. The results illustrated that the introduction of blockchain technology effectively improves the real recycling rate of waste electronics, building trust in consumers, which benefits corporations in certain conditions. However, it amplifies the double marginal effect of the CLSC. Nevertheless, the implementation of blockchain is still beneficial to consumers, as the adverse impact of the double marginal effect is compensated by the improvement in consumer surplus. In addition, the study shows that the implementation of the blockchain incentivizes members, who benefit on the same recycling model when the fixed cost of the blockchain and the share ratio of the residual value of waste electronics are between certain thresholds. That is, both the manufacturer and the platform are better off in a manufacturer recycling model enabled by blockchain. Moreover, in this model, the social welfare and the recycling rate of waste electronics are increased, which enable the CLSC to achieve benefits related to economy, environment, and society.
Abstract The purpose of this study is to explore the application of blockchain technology (BCT) in recycling. This research applies a multiple case study approach with six pioneer organisations, based on secondary data. We found that BCT is an effective approach to promote recycling performance: it can provide tokenisation, waste flow tracking and recycling chain integration. The benefits include âEcoâfriendlyâ, âStimulate participationâ, âSocial inclusionâ, âTransparent recycling chainsâ and âExtended producer responsibility accountabilityâ. However, the majority of existing BCTâbased initiatives are in the pilot stage and face cognitive, technology, internal and external barriers. Our research is one of the first studies on blockchainâbased recycling. We applied the network theory of âReachabilityâ, âRichnessâ and âReceptivityâ and ânetwork formationâ barriers to propose a conceptual framework of BCTâbased recycling, which serves as a practical reference for the recycling industry.