Enhancement of persistent photoconductivity of ZnO nanorods under polyvinyl alcohol encapsulation
We report on the observation of enhanced and persistent ultraviolet (UV) photoconductivity of polyvinyl alcohol (PVA) encapsulated ZnO nanorods. A simple aqueous solution growth technique is adopted to grow ZnO nanorods in the form of thin film as well as powder. The morphological features of nanoro...
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Published in | Materials science in semiconductor processing Vol. 24; pp. 200 - 207 |
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Language | English |
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Abstract | We report on the observation of enhanced and persistent ultraviolet (UV) photoconductivity of polyvinyl alcohol (PVA) encapsulated ZnO nanorods. A simple aqueous solution growth technique is adopted to grow ZnO nanorods in the form of thin film as well as powder. The morphological features of nanorods (before and after PVA coating) have been studied using electron microscopy. Both bare and PVA coated nanorods are found to exhibit photoconductivity under UV light illumination. PVA encapsulation of nanorods has led to the lower adsorption of oxygen molecules on the surface of nanorods leading to the exhibition of high dark current and a slower growth in photocurrent under steady illumination. The appealing aspect of the present investigation lies in the observation of highly enhanced persistent photoconductivity in the encapsulated nanorods. Based on the fact of confinement of the desorbed oxygen molecules, a new mechanism has been proposed to support the encapsulation led enhancement in persistent photoconductivity. The encapsulation led confinement of the desorbed oxygen molecules around the nanorods results in the faster development of surface built-in potential and hence exhibits enhanced persistent photoconductivity, thereby indicating the uniqueness of the proposed mechanism. |
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AbstractList | We report on the observation of enhanced and persistent ultraviolet (UV) photoconductivity of polyvinyl alcohol (PVA) encapsulated ZnO nanorods. A simple aqueous solution growth technique is adopted to grow ZnO nanorods in the form of thin film as well as powder. The morphological features of nanorods (before and after PVA coating) have been studied using electron microscopy. Both bare and PVA coated nanorods are found to exhibit photoconductivity under UV light illumination. PVA encapsulation of nanorods has led to the lower adsorption of oxygen molecules on the surface of nanorods leading to the exhibition of high dark current and a slower growth in photocurrent under steady illumination. The appealing aspect of the present investigation lies in the observation of highly enhanced persistent photoconductivity in the encapsulated nanorods. Based on the fact of confinement of the desorbed oxygen molecules, a new mechanism has been proposed to support the encapsulation led enhancement in persistent photoconductivity. The encapsulation led confinement of the desorbed oxygen molecules around the nanorods results in the faster development of surface built-in potential and hence exhibits enhanced persistent photoconductivity, thereby indicating the uniqueness of the proposed mechanism. |
Author | Satpati, Biswarup Mishra, Sheo K. Bayan, Sayan Chakraborty, Purushottam |
Author_xml | – sequence: 1 givenname: Sayan surname: Bayan fullname: Bayan, Sayan email: sayan.bayan@gmail.com organization: Surface Physics and Material Science Division, Saha Institute of Nuclear Physics, 1/AF, Bidhannagar, Kolkata 700064, India – sequence: 2 givenname: Sheo K. surname: Mishra fullname: Mishra, Sheo K. organization: Department of Physics, University of Lucknow, Lucknow 226007, India – sequence: 3 givenname: Biswarup surname: Satpati fullname: Satpati, Biswarup organization: Surface Physics and Material Science Division, Saha Institute of Nuclear Physics, 1/AF, Bidhannagar, Kolkata 700064, India – sequence: 4 givenname: Purushottam surname: Chakraborty fullname: Chakraborty, Purushottam organization: Surface Physics and Material Science Division, Saha Institute of Nuclear Physics, 1/AF, Bidhannagar, Kolkata 700064, India |
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Cites_doi | 10.1002/1521-4095(20020116)14:2<158::AID-ADMA158>3.0.CO;2-W 10.1186/1556-276X-6-348 10.1016/S0022-0248(01)01305-7 10.1039/c3nr01088k 10.1186/1556-276X-6-165 10.3762/bjnano.3.41 10.1016/j.jallcom.2012.06.024 10.1063/1.1558994 10.1063/1.1811797 10.1021/la902171j 10.1021/am900422y 10.1080/14786435.2012.698761 10.1103/PhysRevB.72.035215 10.1021/nl070111x 10.1021/jp108320j 10.1088/0953-8984/20/19/195222 10.1016/j.physb.2006.07.067 10.1088/0957-4484/19/46/465501 10.1063/1.2190459 10.1002/adma.200502633 10.1063/1.2407264 10.3390/s90806504 10.1088/0268-1242/18/4/201 10.1016/j.eurpolymj.2008.04.015 |
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Keywords | Polymer Nanostructures Semiconductors Photoconductivity Encapsulation Confinement Thin films Aqueous solutions Electronic packaging Dark current Illumination Zinc oxide Polymers Nanorod Protective coatings Surface potential High strength current Oxygen Powders Semiconductor materials II-VI compound Photocurrents Electron microscopy Coated material Ultraviolet radiation Adsorption PVA |
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Snippet | We report on the observation of enhanced and persistent ultraviolet (UV) photoconductivity of polyvinyl alcohol (PVA) encapsulated ZnO nanorods. A simple... |
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SubjectTerms | Applied sciences Condensed matter: structure, mechanical and thermal properties Confinement Cross-disciplinary physics: materials science; rheology Design. Technologies. Operation analysis. Testing Electronics Encapsulation Exact sciences and technology Illumination Integrated circuits Materials science Nanorods Nanoscale materials and structures: fabrication and characterization Nanostructures Nanotubes Other materials Photoconductivity Physics Polymer Polyvinyl alcohols Semiconductor electronics. Microelectronics. Optoelectronics. Solid state devices Semiconductors Solid surfaces and solid-solid interfaces Specific materials Surfaces and interfaces; thin films and whiskers (structure and nonelectronic properties) Zinc oxide |
Title | Enhancement of persistent photoconductivity of ZnO nanorods under polyvinyl alcohol encapsulation |
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