Patent classifications
H10N30/1061
MECHANO-LUMINESCENT-OPTOELECTRONIC SMART CLOTHING
Disclosed herein are self-powered and multi-modal sensing wearables. The smart wearables can comprise mechano-luminescence-optoelectronic materials, which can be used for self-powered sensing and energy harvesting.
Antibacterial yarn and antibacterial fabric
An antibacterial yarn that includes a core yarn including a functional polymer that generates a charge by external energy and a first sheath yarn higher in hygroscopicity than the core yarn, the first sheath yarn covering at least a part of a periphery of the core yarn across an axial direction of the core yarn.
Self-powered sensing of tensile strain using multifunctional mechano-luminescence-optoelectronic composites
Disclosed herein is a composition and a method for energy harvesting and the autonomous detection of structural failure. This method can be used to monitor, for example, the structural integrity of unmanned aircraft systems.
Piezoelectric substrate, piezoelectric woven fabric, piezoelectric knitted fabric, piezoelectric device, force sensor, and actuator
The present invention provides: a piezoelectric substrate which includes a first piezoelectric body having an elongated shape and helically wound in one direction, and which does not include a core material, in which the first piezoelectric body includes a helical chiral polymer (A) having an optical activity; in which the length direction of the first piezoelectric body is substantially parallel to the main direction of orientation of the helical chiral polymer (A) included in the first piezoelectric body; and in which the first piezoelectric body has a degree of orientation F, as measured by X-ray diffraction according to the following Equation (a), within the range of 0.5 or more but less than 1.0:
degree of orientation F=(180°−α)/180° (a)
(in which α represents the half-value width of the peak derived from the orientation).
METHOD FOR MANUFACTURING PIEZOELECTRIC TEXTILE ENERGY HARVESTER AND SENSOR
Energy harvesting device comprising: a first layer (1) of electrically conductive textile fabric material; a second layer (2) of electrically conductive textile fabric material; a layer of piezoelectric polymer film (3) arranged between the first (1) and the second (2) electrically conductive textile layers; wherein the piezoelectric polymer film layer (3) is laminated between the first (1) and second (2) electrically conductive textile layer.
Highly Sensitive Acoustic Fabric Including An Acoustic Fiber Transducer
The acoustic fiber transducer has a piezoelectric domain with Young's modulus, E.sub.piezo, and including a non-centrosymmetric crystalline-phase piezoelectric material and inorganic piezoelectric particles. At least one charge collector domain is in electrical connection with the piezoelectric domain and includes an electrically conductive material operative to collect electrical charge generated in the piezoelectric domain. At least one electrical conductor is in electrical contact with the at least one charge collector domain and includes an electrically conductive material operative to transport electrical charge from a charge collector domain to an end of the acoustic fiber transducer as an electrical signal indicative of input acoustic sound pressure on a matrix of textile fibers that includes the acoustic fiber transducer. Outer acoustic energy transmission material has a Young's modulus E.sub.trans, of 0.3 Pa-500 MPa, for matching vibrational modes of the textile fiber matrix. A ratio of E.sub.piezo/E.sub.trans is between about 5 and about 70,000.
PRESSURE VISUALIZATION DEVICE, MANUFACTURING METHOD THEREOF, AND DETECTION DEVICE
A pressure visualization device includes a flexible substrate, a piezoelectric module and an electrochromic module disposed on a surface of the flexible substrate and adjacent to each other, a first attachment layer on a surface of the piezoelectric module facing away from the flexible substrate, and a second attachment layer on the other surface of the flexible substrate; the piezoelectric module includes a plurality of piezoelectric units each including a first electrode, a second electrode, and a piezoelectric layer between the first electrode and the second electrode; the electrochromic module includes a plurality of electrochromic units each including a third electrode, a fourth electrode, an electrochromic layer between the third electrode and the fourth electrode; wherein the second electrode is electrically connected to the third electrode, and the fourth electrode is a transparent electrode.
SELF-POWERED SENSING OF TENSILE STRAIN USING MULTIFUNCTIONAL MECHANO-LUMINESCENCE-OPTOELECTRONIC COMPOSITES
Disclosed herein is a composition and a method for energy harvesting and the autonomous detection of structural failure. This method can be used to monitor, for example, the structural integrity of unmanned aircraft systems.
Elongated plate-form piezoelectric body and production method therefor, layered body and production method therefor, fabric, garment, and biological information acquisition device
Provided is: an elongated plate-form piezoelectric body, which contains an optically active helical chiral polymer (A) having a weight-average molecular weight of from 50,000 to 1,000,000 and has an elongated plate shape having a thickness of from 0.001 mm to 0.2 mm, a width of from 0.1 mm to 30 mm and a width-to-thickness ratio of 2 or higher, and in which the lengthwise direction and the main orientation direction of the helical chiral polymer (A) are substantially parallel to each other; the crystallinity measured by a DSC method is from 20% to 80%; and the birefringence is from 0.01 to 0.03.
MECHANICALLY ADAPTIVE MATERIALS
Provided are mechanically adaptive materials that include a composite gel that is responsive to input energy. In some embodiments, input vibrational energy results in strengthening the composite gel. The strengthening may be reversible or irreversible according to various embodiments. In some embodiments, input vibrational energy generates chemical promotors for cross-linking reactions and/or linear polymerization via mechano-chemical transducers. In some embodiments, an applied shear stress is used to control charge generation and generate chemical promoters for cross-linking and/or linear polymerization. In some embodiments, the composite gels include a polymer network and/or polymer network precursors, reactive groups and/or linkers formed by reaction of the reactive groups, and a mechano-chemical transducer. Also provided are methods of mechanically promoted synthesis of polymers and polymer gels.