SATURN: An Introduction to the Internet of Materials.

We envision a new generation of computation devices, computational materials, which are self-sustainable, cheaply manufactured at scale and exhibit form factors that are easily incorporated into everyday environments. These materials can enable ordinary objects such as walls, carpet, furniture, jewe...

Descripción completa

Detalles Bibliográficos
Publicado en:Communications of the ACM Vol. 63; no. 12; pp. 92 - 100
Autores principales: Arora, Nivedita, Starner, Thad, Abowd, Gregory D.
Formato: Artículo
Publicado: Association for Computing Machinery Dec2020
Materias:
Acceso en línea:Ver este registro en EBSCOhost
fields @attributes:
  recordID: 1
pdfLink:
plink: https://search.ebscohost.com/login.aspx?direct=true&db=hlh&AN=147083016&site=ehost-live
header:
  @attributes:
    shortDbName: hlh
    uiTerm: 147083016
    longDbName: Humanities International Complete
    uiTag: AN
  controlInfo:
    bkinfo:
    jinfo:
      jid:
        00010782
        ACM
      jtl: Communications of the ACM
      issn: 00010782
      maglogo: N
    pubinfo:
      dt: Dec2020
      vid: 63
      iid: 12
      pid: 68
      pub: Association for Computing Machinery
    artinfo:
      ui:
        147083016
        10.1145/3429948
      ppf: 92
      ppct: 8
      formats:
      tig:
        atl: SATURN: An Introduction to the Internet of Materials.
      aug:
        au:
          Arora, Nivedita
          Starner, Thad
          Abowd, Gregory D.
        affil: School of Interactive Computing, Georgia Institute of Technology, USA
      su:
        Detectors
        Remote computing
        Computer science research
        Triboelectricity
        Technological innovations
      sug:
        subj:
          Detectors
          Remote computing
          Computer science research
          Triboelectricity
          Technological innovations
      ab: We envision a new generation of computation devices, computational materials, which are self-sustainable, cheaply manufactured at scale and exhibit form factors that are easily incorporated into everyday environments. These materials can enable ordinary objects such as walls, carpet, furniture, jewelry, and cups to do computational things without looking like today's computational devices. Self-powered Audio Triboelectric Ultra-thin Rollable Nanogenerator (SATURN) is an early example of a computational material that can sense vibration, such as sound. SATURN can be manufactured from inexpensive components, is flexible so that it can be integrated into many different surfaces, and powers itself through the sound or vibration it is sensing. Using radio backscatter, we demonstrate that SATURN's sensed data is passively transmitted to remote computers, alleviating the need for batteries or any wired power for the material itself. The proliferation of these types of computational materials ushers an era of Internet of Materials, further blurring the distinction between the physical and digital worlds.
      pubtype: Periodical
      doctype: Article
      src: R
    language: English
    refInfo:
    copyright:
      @attributes:
        flag: Y
      dt:
        @attributes:
          year: 2020
    holdings:
      @attributes:
        islocal: N