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This Book is in Good Condition. Clean Copy With Light Amount of Wear. 100% Guaranteed. Summary: This book examines a novel class of flexible electronic material with great potential for use in the construction of stretchable amplifiers and memory elements which mimics the excitatory response of pressure-sensing neurons in the human skin. Buchnummer des Verkäufers

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Inhaltsangabe: This thesis examines a novel class of flexible electronic material with great potential for use in the construction of stretchable amplifiers and memory elements.  Most remarkably the composite material produces spontaneous oscillations that increase in frequency when pressure is applied to it. In this way, the material mimics the excitatory response of pressure-sensing neurons in the human skin. The composites, formed of silicone and graphitic nanoparticles, were prepared in several allotropic forms and functionalized with naphthalene diimide molecules. A systematic study is presented of the negative differential resistance (NDR) region of the current-voltage curves, which is responsible for the material?s active properties. This study was conducted as a function of temperature, graphite filling fraction, scaling to reveal the break-up of the samples into electric field domains at the onset of the NDR region, and an electric-field induced metal-insulator transition in graphite nanoparticles. The effect of molecular functionalization on the miscibility threshold and the current-voltage curves is demonstrated. Room-temperature and low-temperature measurements were performed on these composite films under strains using a remote-controlled, custom-made step motor bench.

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Littlejohn, Samuel David
Verlag: Springer (2013)
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Buchbeschreibung Springer, 2013. Hardcover. Buchzustand: New. book. Buchnummer des Verkäufers 3319007408

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SAMUEL DAVID LITTLEJOHN
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Buchbeschreibung Springer, 2013. Hardback. Buchzustand: NEW. 9783319007403 This listing is a new book, a title currently in-print which we order directly and immediately from the publisher. Buchnummer des Verkäufers HTANDREE0903476

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Samuel David Littlejohn
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Buchbeschreibung Springer International Publishing AG, 2013. HRD. Buchzustand: New. New Book. Delivered from our US warehouse in 10 to 14 business days. THIS BOOK IS PRINTED ON DEMAND.Established seller since 2000. Buchnummer des Verkäufers IP-9783319007403

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Littlejohn, Samuel David
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Buchbeschreibung Springer, 2016. Paperback. Buchzustand: New. PRINT ON DEMAND Book; New; Publication Year 2016; Not Signed; Fast Shipping from the UK. No. book. Buchnummer des Verkäufers ria9783319007403_lsuk

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Buchbeschreibung Springer International Publishing AG, 2013. HRD. Buchzustand: New. New Book.Shipped from US within 10 to 14 business days.THIS BOOK IS PRINTED ON DEMAND. Established seller since 2000. Buchnummer des Verkäufers IP-9783319007403

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Buchbeschreibung 2013. HRD. Buchzustand: New. New Book. Shipped from US within 10 to 14 business days. Established seller since 2000. Buchnummer des Verkäufers KS-9783319007403

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Samuel David Littlejohn
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Buchbeschreibung Springer-Verlag Gmbh Sep 2013, 2013. Buch. Buchzustand: Neu. 241x162x17 mm. Neuware - This thesis examines a novel class of flexible electronic material with great potential for use in the construction of stretchable amplifiers and memory elements. Most remarkably the composite material produces spontaneous oscillations that increase in frequency when pressure is applied to it. In this way, the material mimics the excitatory response of pressure-sensing neurons in the human skin. The composites, formed of silicone and graphitic nanoparticles, were prepared in several allotropic forms and functionalized with naphthalene diimide molecules. A systematic study is presented of the negative differential resistance (NDR) region of the current-voltage curves, which is responsible for the material's active properties. This study was conducted as a function of temperature, graphite filling fraction, scaling to reveal the break-up of the samples into electric field domains at the onset of the NDR region, and an electric-field induced metal-insulator transition in graphite nanoparticles. The effect of molecular functionalization on the miscibility threshold and the current-voltage curves is demonstrated. Room-temperature and low-temperature measurements were performed on these composite films under strains using a remote-controlled, custom-made step motor bench. 166 pp. Englisch. Buchnummer des Verkäufers 9783319007403

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Samuel David Littlejohn
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Buchbeschreibung Springer-Verlag Gmbh Sep 2013, 2013. Buch. Buchzustand: Neu. 241x162x17 mm. Neuware - This thesis examines a novel class of flexible electronic material with great potential for use in the construction of stretchable amplifiers and memory elements. Most remarkably the composite material produces spontaneous oscillations that increase in frequency when pressure is applied to it. In this way, the material mimics the excitatory response of pressure-sensing neurons in the human skin. The composites, formed of silicone and graphitic nanoparticles, were prepared in several allotropic forms and functionalized with naphthalene diimide molecules. A systematic study is presented of the negative differential resistance (NDR) region of the current-voltage curves, which is responsible for the material's active properties. This study was conducted as a function of temperature, graphite filling fraction, scaling to reveal the break-up of the samples into electric field domains at the onset of the NDR region, and an electric-field induced metal-insulator transition in graphite nanoparticles. The effect of molecular functionalization on the miscibility threshold and the current-voltage curves is demonstrated. Room-temperature and low-temperature measurements were performed on these composite films under strains using a remote-controlled, custom-made step motor bench. 166 pp. Englisch. Buchnummer des Verkäufers 9783319007403

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Samuel David Littlejohn
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Buchbeschreibung Springer-Verlag Gmbh Sep 2013, 2013. Buch. Buchzustand: Neu. 241x162x17 mm. Neuware - This thesis examines a novel class of flexible electronic material with great potential for use in the construction of stretchable amplifiers and memory elements. Most remarkably the composite material produces spontaneous oscillations that increase in frequency when pressure is applied to it. In this way, the material mimics the excitatory response of pressure-sensing neurons in the human skin. The composites, formed of silicone and graphitic nanoparticles, were prepared in several allotropic forms and functionalized with naphthalene diimide molecules. A systematic study is presented of the negative differential resistance (NDR) region of the current-voltage curves, which is responsible for the material's active properties. This study was conducted as a function of temperature, graphite filling fraction, scaling to reveal the break-up of the samples into electric field domains at the onset of the NDR region, and an electric-field induced metal-insulator transition in graphite nanoparticles. The effect of molecular functionalization on the miscibility threshold and the current-voltage curves is demonstrated. Room-temperature and low-temperature measurements were performed on these composite films under strains using a remote-controlled, custom-made step motor bench. 166 pp. Englisch. Buchnummer des Verkäufers 9783319007403

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Samuel David Littlejohn
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Buchbeschreibung Springer-Verlag Gmbh Sep 2013, 2013. Buch. Buchzustand: Neu. 241x155x17 mm. Neuware - This thesis examines a novel class of flexible electronic material with great potential for use in the construction of stretchable amplifiers and memory elements. Most remarkably the composite material produces spontaneous oscillations that increase in frequency when pressure is applied to it. In this way, the material mimics the excitatory response of pressure-sensing neurons in the human skin. The composites, formed of silicone and graphitic nanoparticles, were prepared in several allotropic forms and functionalized with naphthalene diimide molecules. A systematic study is presented of the negative differential resistance (NDR) region of the current-voltage curves, which is responsible for the material's active properties. This study was conducted as a function of temperature, graphite filling fraction, scaling to reveal the break-up of the samples into electric field domains at the onset of the NDR region, and an electric-field induced metal-insulator transition in graphite nanoparticles. The effect of molecular functionalization on the miscibility threshold and the current-voltage curves is demonstrated. Room-temperature and low-temperature measurements were performed on these composite films under strains using a remote-controlled, custom-made step motor bench. 166 pp. Englisch. Buchnummer des Verkäufers 9783319007403

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