Multifunctional energy storage composite structures with embedded lithium-ion batteries

This work proposes and analyzes a structurally-integrated lithium-ion battery concept. The multifunctional energy storage composite (MESC) structures developed here encapsulate lithium-ion battery materials inside high-strength carbon-fiber composites and use interlocking polymer rivets to stabilize...

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Published inJournal of power sources Vol. 414; no. C; pp. 517 - 529
Main Authors Ladpli, Purim, Nardari, Raphael, Kopsaftopoulos, Fotis, Chang, Fu-Kuo
Format Journal Article
LanguageEnglish
Published Netherlands Elsevier B.V 28.02.2019
Elsevier
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Abstract This work proposes and analyzes a structurally-integrated lithium-ion battery concept. The multifunctional energy storage composite (MESC) structures developed here encapsulate lithium-ion battery materials inside high-strength carbon-fiber composites and use interlocking polymer rivets to stabilize the electrode layer stack mechanically. These rivets enable load transfer between battery layers, allowing them to store electrical energy while also contributing to the structural load carrying performance, without any modifications to the battery chemistry. The design rationale, fabrication processes, and experimental mechano-electrical characterization of first-generation MESCs are discussed. Experimental results indicate that the MESCs offer electrochemical performance comparable to standard lithium-ion cells, despite the disruptive design change. The mechanical performance of MESCs is assessed via quasi-static three-point bending tests, with results showing significantly improved mechanical stiffness and strength over traditional pouch cells. The rivets minimize interlayer shear movement of the electrode stack, thus allowing it to maintain electrochemical functionalities while carrying mechanical bending. While minimal load application can cause permanent deformation of pouch cells, MESCs maintain their structural integrity and energy-storage capabilities under realistic repeated loading. The results obtained demonstrate the mechanical robustness of MESCs, which allow them to be fabricated as energy-storing structures for electric vehicles and other applications. [Display omitted] •Multifunctional energy storage composites (MESC) embed battery layers in structures.•Interlocking rivets anchor battery layers which contribute to mechanical performance.•Experimental testing of MESC shows comparable electrochemical behavior to baseline.•At 60% packing efficiency, MESC gain 15× mechanical rigidity compared to pouch cells.•MESC show negligible capacity fading after 1000 bending cycles at 80% design load.
AbstractList This work proposes and analyzes a structurally-integrated lithium-ion battery concept. The multifunctional energy storage composite (MESC) structures developed here encapsulate lithium-ion battery materials inside high-strength carbon-fiber composites and use interlocking polymer rivets to stabilize the electrode layer stack mechanically. These rivets enable load transfer between battery layers, allowing them to store electrical energy while also contributing to the structural load carrying performance, without any modifications to the battery chemistry. The design rationale, fabrication processes, and experimental mechano-electrical characterization of first-generation MESCs are discussed. Experimental results indicate that the MESCs offer electrochemical performance comparable to standard lithium-ion cells, despite the disruptive design change. The mechanical performance of MESCs is assessed via quasi-static three-point bending tests, with results showing significantly improved mechanical stiffness and strength over traditional pouch cells. The rivets minimize interlayer shear movement of the electrode stack, thus allowing it to maintain electrochemical functionalities while carrying mechanical bending. While minimal load application can cause permanent deformation of pouch cells, MESCs maintain their structural integrity and energy-storage capabilities under realistic repeated loading. The results obtained demonstrate the mechanical robustness of MESCs, which allow them to be fabricated as energy-storing structures for electric vehicles and other applications. [Display omitted] •Multifunctional energy storage composites (MESC) embed battery layers in structures.•Interlocking rivets anchor battery layers which contribute to mechanical performance.•Experimental testing of MESC shows comparable electrochemical behavior to baseline.•At 60% packing efficiency, MESC gain 15× mechanical rigidity compared to pouch cells.•MESC show negligible capacity fading after 1000 bending cycles at 80% design load.
Author Chang, Fu-Kuo
Kopsaftopoulos, Fotis
Nardari, Raphael
Ladpli, Purim
Author_xml – sequence: 1
  givenname: Purim
  orcidid: 0000-0001-7934-8154
  surname: Ladpli
  fullname: Ladpli, Purim
  email: pladpli@stanford.edu
  organization: Department of Aeronautics and Astronautics, Stanford University, Stanford, CA, 94305, USA
– sequence: 2
  givenname: Raphael
  surname: Nardari
  fullname: Nardari, Raphael
  organization: Department of Aeronautics and Astronautics, Stanford University, Stanford, CA, 94305, USA
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  givenname: Fotis
  orcidid: 0000-0001-8795-3725
  surname: Kopsaftopoulos
  fullname: Kopsaftopoulos, Fotis
  organization: Department of Mechanical, Aerospace and Nuclear Engineering, Rensselaer Polytechnic Institute, Troy, NY, 12180, USA
– sequence: 4
  givenname: Fu-Kuo
  surname: Chang
  fullname: Chang, Fu-Kuo
  organization: Department of Aeronautics and Astronautics, Stanford University, Stanford, CA, 94305, USA
BackLink https://www.osti.gov/biblio/1547845$$D View this record in Osti.gov
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Keywords Mechano-electrical characterization
Lithium-ion battery
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Snippet This work proposes and analyzes a structurally-integrated lithium-ion battery concept. The multifunctional energy storage composite (MESC) structures developed...
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SubjectTerms Carbon-fiber composite
Lithium-ion battery
Mechano-electrical characterization
Multifunctional material
Structural battery
Title Multifunctional energy storage composite structures with embedded lithium-ion batteries
URI https://dx.doi.org/10.1016/j.jpowsour.2018.12.051
https://www.osti.gov/biblio/1547845
Volume 414
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