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We are analyzing https://link.springer.com/article/10.1007/s40820-022-01008-y.

Title:
Recent Advances and Challenges Toward Application of Fibers and Textiles in Integrated Photovoltaic Energy Storage Devices | Nano-Micro Letters
Description:
Flexible microelectronic devices have seen an increasing trend toward development of miniaturized, portable, and integrated devices as wearable electronics which have the requirement for being light weight, small in dimension, and suppleness. Traditional three-dimensional (3D) and two-dimensional (2D) electronics gadgets fail to effectively comply with these necessities owing to their stiffness and large weights. Investigations have come up with a new family of one-dimensional (1D) flexible and fiber-based electronic devices (FBEDs) comprising power storage, energy-scavenging, implantable sensing, and flexible displays gadgets. However, development and manufacturing are still a challenge owing to their small radius, flexibility, low weight, weave ability and integration in textile electronics. This paper will provide a detailed review on the importance of substrates in electronic devices, intrinsic property requirements, fabrication classification and applications in energy harvesting, energy storage and other flexible electronic devices. Fiber- and textile-based electronic devices for bulk/scalable fabrications, encapsulation, and testing are reviewed and presented future research ideas to enhance the commercialization of these fiber-based electronics devices.
Website Age:
28 years and 1 months (reg. 1997-05-29).

Matching Content Categories {šŸ“š}

  • Science
  • Environment
  • Technology & Computing

Content Management System {šŸ“}

What CMS is link.springer.com built with?

Custom-built

No common CMS systems were detected on Link.springer.com, and no known web development framework was identified.

Traffic Estimate {šŸ“ˆ}

What is the average monthly size of link.springer.com audience?

🌠 Phenomenal Traffic: 5M - 10M visitors per month


Based on our best estimate, this website will receive around 5,000,019 visitors per month in the current month.
However, some sources were not loaded, we suggest to reload the page to get complete results.

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How Does Link.springer.com Make Money? {šŸ’ø}

The income method remains a mystery to us.

Not every website is profit-driven; some are created to spread information or serve as an online presence. Websites can be made for many reasons. This could be one of them. Link.springer.com could have a money-making trick up its sleeve, but it's undetectable for now.

Keywords {šŸ”}

flexible, devices, article, google, scholar, energy, electronic, device, materials, textile, fig, electrodes, substrates, fabrication, material, solar, electronics, wearable, active, performance, fibers, electrode, substrate, carbon, applications, shown, mater, fiber, batteries, current, scs, stability, cells, excellent, high, storage, supercapacitors, textiles, mechanical, permission, capacitance, fabricated, electrolyte, ref, wang, fiberbased, reprinted, adv, textilebased, configuration,

Topics {āœ’ļø}

/news-release/2021/12/09/2349113/0/en/e-textiles-smart-clothing-market-surpass-15-018-9-mn /2018/12/9/18131404/google-atap-levis-project-smart-jacket-jacquard %2c%20korea%2c%20japan%20and%20taiwan solid-state lithium–sulfur batteries spider-inspired crack-based sensors $$c_{{{\text{sp}}}} = \frac{{c_{ fiber-shaped lithium-ion battery dye-sensitized solar cells dye-sensitized solar cell ultra-stretchable light-emitting fibers textile-based energy-generating devices fiber-based chemical/electrophysiological sensing high-performance micro-supercapacitor electrodes mno2/pani-based electrode fabrications rechargeable zn–air batteries real-time brain-interfaced camouflage pva/na2so4 gel-polymer electrolyte %202020%2c%20idtechex%20expect%20that fiber-based solar cells É£-mno2-pani-cp substrate polymer-based solar cells fiber-shaped solar cells gel-polymer electrolyte pva/koh pva-koh gel-polymer electrolyte wire-shaped micro-supercapacitor solid-state flexible supercapacitor textile-based solar cells silicon-based solar cells solid-state asymmetric supercapacitors nitrogen-doped carbon foams spray-coated solar cells embedded ag/ni metal-mesh yarn-based asymmetric supercapacitor ultra-thin sensing devices completely textile-based owing pvdf-hfp-tea-bf4 projectsĀ ptdc/ctm-ctm/1571/2020 flexible lithium–sulfur battery flexible solid-state supercapacitors flexible lithium-ion battery É£-mno2 wrapped pani plastic crystal-lithium batteries flexible lithium-ion batteries carbon fiber-based cloths hybridizing fiber-shaped nanogenerators flexible fiber-shaped supercapacitor = \frac{1}{2}c_{{{\text{cell}}}} $$c_{{{\text{cell}}}} = \frac{ multicore–shell fiber printing eutectic gallium-indium egin

Questions {ā“}

  • Long, To be or not to be pseudocapacitive?
  • Where \(i\) is the current on the scan rate ν, a and b are adjustable parameters?

Schema {šŸ—ŗļø}

WebPage:
      mainEntity:
         headline:Recent Advances and Challenges Toward Application of Fibers and Textiles in Integrated Photovoltaic Energy Storage Devices
         description: Flexible microelectronic devices have seen an increasing trend toward development of miniaturized, portable, and integrated devices as wearable electronics which have the requirement for being light weight, small in dimension, and suppleness. Traditional three-dimensionalĀ (3D) and two-dimensionalĀ (2D) electronics gadgets fail to effectively comply with these necessities owing to their stiffness and large weights. Investigations have come up with a new family of one-dimensionalĀ (1D) flexible and fiber-based electronic devicesĀ (FBEDs) comprising power storage, energy-scavenging, implantable sensing, and flexible displays gadgets. However, development and manufacturing are still a challenge owing to their small radius, flexibility, low weight, weave ability and integration in textile electronics. This paper will provide a detailed review on the importance of substrates in electronic devices, intrinsic property requirements, fabrication classification and applications in energy harvesting, energy storage and other flexible electronic devices. Fiber- and textile-based electronic devices for bulk/scalable fabrications, encapsulation, and testing are reviewed and presented future research ideas to enhance the commercialization of these fiber-based electronics devices.
         datePublished:2023-01-20T00:00:00Z
         dateModified:2023-01-20T00:00:00Z
         pageStart:1
         pageEnd:58
         license:http://creativecommons.org/licenses/by/4.0/
         sameAs:https://doi.org/10.1007/s40820-022-01008-y
         keywords:
            Flexible electronics
            Electronic textiles
            Energy harvesting
            Supercapacitors
            Photovoltaic devices
            Nanotechnology and Microengineering
            Nanotechnology
            Nanoscale Science and Technology
            Energy
            general
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                     address:
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ScholarlyArticle:
      headline:Recent Advances and Challenges Toward Application of Fibers and Textiles in Integrated Photovoltaic Energy Storage Devices
      description: Flexible microelectronic devices have seen an increasing trend toward development of miniaturized, portable, and integrated devices as wearable electronics which have the requirement for being light weight, small in dimension, and suppleness. Traditional three-dimensionalĀ (3D) and two-dimensionalĀ (2D) electronics gadgets fail to effectively comply with these necessities owing to their stiffness and large weights. Investigations have come up with a new family of one-dimensionalĀ (1D) flexible and fiber-based electronic devicesĀ (FBEDs) comprising power storage, energy-scavenging, implantable sensing, and flexible displays gadgets. However, development and manufacturing are still a challenge owing to their small radius, flexibility, low weight, weave ability and integration in textile electronics. This paper will provide a detailed review on the importance of substrates in electronic devices, intrinsic property requirements, fabrication classification and applications in energy harvesting, energy storage and other flexible electronic devices. Fiber- and textile-based electronic devices for bulk/scalable fabrications, encapsulation, and testing are reviewed and presented future research ideas to enhance the commercialization of these fiber-based electronics devices.
      datePublished:2023-01-20T00:00:00Z
      dateModified:2023-01-20T00:00:00Z
      pageStart:1
      pageEnd:58
      license:http://creativecommons.org/licenses/by/4.0/
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      keywords:
         Flexible electronics
         Electronic textiles
         Energy harvesting
         Supercapacitors
         Photovoltaic devices
         Nanotechnology and Microengineering
         Nanotechnology
         Nanoscale Science and Technology
         Energy
         general
      image:
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                  name:School of Science and Technology, NOVA University Lisbon
                  address:
                     name:CENIMAT|I3N, Department of Materials Science, School of Science and Technology, NOVA University Lisbon, Caparica, Portugal
                     type:PostalAddress
                  type:Organization
            type:Person
            name:Ghulam Abbas
            affiliation:
                  name:School of Science and Technology, NOVA University Lisbon
                  address:
                     name:CENIMAT|I3N, Department of Materials Science, School of Science and Technology, NOVA University Lisbon, Caparica, Portugal
                     type:PostalAddress
                  type:Organization
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            name:Ana Catarina Baptista
            affiliation:
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                  address:
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            address:
               name:CENIMAT|I3N, Department of Materials Science, School of Science and Technology, NOVA University Lisbon, Caparica, Portugal
               type:PostalAddress
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      name:Isabel Ferreira
      affiliation:
            name:School of Science and Technology, NOVA University Lisbon
            address:
               name:CENIMAT|I3N, Department of Materials Science, School of Science and Technology, NOVA University Lisbon, Caparica, Portugal
               type:PostalAddress
            type:Organization
      name:Ghulam Abbas
      affiliation:
            name:School of Science and Technology, NOVA University Lisbon
            address:
               name:CENIMAT|I3N, Department of Materials Science, School of Science and Technology, NOVA University Lisbon, Caparica, Portugal
               type:PostalAddress
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      name:Ana Catarina Baptista
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            name:School of Science and Technology, NOVA University Lisbon
            address:
               name:CENIMAT|I3N, Department of Materials Science, School of Science and Technology, NOVA University Lisbon, Caparica, Portugal
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      name:CENIMAT|I3N, Department of Materials Science, School of Science and Technology, NOVA University Lisbon, Caparica, Portugal
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      name:CENIMAT|I3N, Department of Materials Science, School of Science and Technology, NOVA University Lisbon, Caparica, Portugal
      name:CENIMAT|I3N, Department of Materials Science, School of Science and Technology, NOVA University Lisbon, Caparica, Portugal

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