128 results match your criteria: "Advanced Materials Research Institute[Affiliation]"

Particle placement and sheet topological control in the fabrication of Ag-hexaniobate nanocomposites.

Langmuir

February 2016

Department of Chemistry and Advanced Materials Research Institute, University of New Orleans, New Orleans, Louisiana 70148, United States.

Synthetic methods are demonstrated that allow for the fabrication of Ag-hexaniobate nanocomposites with directed nanoparticle (NP) placement and nanosheet morphological control. The solvothermal treatment of exfoliated nanosheets (NSs) in the presence of Ag NPs leads to a high yield of Ag nanocomposites. This approach is quite flexible and, with control of time and temperature, can be used to produce nanocomposites with specific architectures; Ag NPs can be attached to nanosheets, attached to the surfaces of nanoscrolls, or at higher temperatures, captured within nanoscrolls to form nanopeapod (NPP) structures.

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Surface acoustic wave ammonia sensor based on ZnO/SiO2 composite film.

J Hazard Mater

March 2015

Institute of Fundamental and Frontier Sciences and School of Physical Electronics, University of Electronic Science and Technology of China, Chengdu 610054, PR China. Electronic address:

A surface acoustic wave (SAW) resonator with ZnO/SiO2 (ZS) composite film was used as an ammonia sensor in this study. ZS composite films were deposited on the surface of SAW devices using the sol-gel method, and were characterized using SEM, AFM, and XRD. The performance of the sensors under ammonia gas was optimized by adjusting the molar ratio of ZnO:SiO2 to 1:1, 1:2 and 1:3, and the sensor with the ratio of ZnO to SiO2 equaling to 1:2 was found to have the best performance.

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Titanium dioxide (TiO2) nanorod arrays grown directly on Ti metal foil were prepared by a facile one-step hydrothermal method, in which the Ti foil serves as both substrate and precursor. The nanorods are tetragonal rutile single crystal with growth orientation along the [001] direction. The electrochemical properties of the TiO2 nanorod arrays were systematically investigated by cyclic voltammetry, galvanostatic charge/discharge and electrochemical impedance spectroscopy using a three-electrode system.

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Article Synopsis
  • * Characterization techniques like SEM and AFM revealed that the composite films had porous structures, which improved the sensor's ammonia detection capabilities, especially with 50% Co3O4 loading.
  • * The sensor demonstrated significant performance with a frequency shift of 3500 Hz at 1 ppm ammonia and a 12,500 Hz shift at 20 ppm, indicating that the higher frequency shift was linked to a decrease in the film's conductance upon ammonia exposure.
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Progress has been made in using human serum albumin nanoparticles (HSAPs) as promising colloidal carrier systems for early detection and targeted treatment of cancer and other diseases. Despite this success, there is a current lack of multi-functional HSAP hybrids that offer combinational therapies. The size of the HSAPs has crucial importance on drug loading and in vivo performance and has previously been controlled via manipulation of pH and cross-linking parameters.

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Evidencing the existence of intrinsic half-metallicity and ferromagnetism in zigzag gallium sulfide nanoribbons.

Sci Rep

July 2014

Pacific Northwest National Laboratory, MS K2-01, P.O. Box 999, Richland, Washington, 99352, USA.

Article Synopsis
  • The study shows that gallium sulfide nanoribbons (GaSNRs) can naturally achieve half-metallicity with ferromagnetic (FM) properties without needing external conditions.
  • This half-metallic property arises from the unique electronic states in the Ga-dominated edge of the nanoribbons.
  • Additionally, GaSNRs maintain this robust half-metallic behavior even at room temperature, potentially expanding the options for future spintronic technologies beyond conventional materials like graphene and molybdenum sulfide.
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Density functional theory calculations of NdAlO3/SrTiO3 heterostructure show that two-dimensional electron gas (2-DEG) is produced at the interface with a built-in potential of ~0.3 eV per unit cell. The effects of surface defects on the phase stability and electric field of 2-DEG have been investigated.

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Iron oxide nanotubes synthesized via template-based electrodeposition.

Nanoscale

May 2014

Department of Chemistry and Advanced Materials Research Institute, University of New Orleans, New Orleans, LA 70148, USA.

Considerable effort has been invested in the development of synthetic methods for the preparation iron oxide nanostructures for applications in nanotechnology. While a variety of structures have been reported, only a few studies have focused on iron oxide nanotubes. Here, we present details on the synthesis and characterization of iron oxide nanotubes along with a proposed mechanism for FeOOH tube formation.

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7,7,8,8-Tetracyanoquinodimethane-assisted one-step electrochemical exfoliation of graphite and its performance as an electrode material.

Nanoscale

May 2014

Advanced Materials Research Institute for BIN Fusion Technology, Department of BIN Fusion Technology, Chonbuk National University, Jeonju, Jeonbuk 561-756, Republic of Korea.

A green approach for the preparation of water-dispersible functionalized graphene via one-step electrochemical exfoliation of graphite using 7,7,8,8-tetracyanoquinodimethane (TCNQ) anions as surface modifiers and electrolytes was described. TCNQ is an organic charge-transfer complex with electron accepting and noteworthy electrical properties. The exfoliation of graphite to a few-layer graphene sheets was confirmed by transmission electron microscopy (TEM) and atomic force microscopy (AFM) image analysis.

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Achieving a high-quality interface is of great importance in core-shell nanowire solar cells, as it significantly inhibits interfacial recombination and thus improves the photovoltaic performance. Combining thermal evaporation of CdSe and pulsed laser deposition of ZnTe, we successfully synthesized nearly lattice matched all wurtzite CdSe/ZnTe core-shell nanowires on silicon substrates. Comprehensive morphological and structural characterizations revealed that a wurtzite ZnTe shell layer epitaxially grows over a wurtzite CdSe core nanowire with an abrupt interface.

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Topochemical synthesis of alkali-metal hydroxide layers within double- and triple-layered perovskites.

Inorg Chem

February 2014

Department of Chemistry and the Advanced Materials Research Institute, University of New Orleans, 2000 Lakeshore Drive, New Orleans, Louisiana 70148-2820, United States.

The formation of alkali-metal hydroxide layers within lamellar perovskites has been accomplished by a two-step topochemical reaction strategy. Reductive intercalation of ALaNb2O7 with alkali metal (A = K, Rb) and RbCa2Nb3O10 with Rb leads to A2LaNb2O7 and Rb2Ca2Nb3O10, respectively. Oxidative intercalation with stoichiometric amounts of water vapor, produced by the decomposition of calcium oxalate monohydrate in a sealed ampule, allows the insertion hydroxide species.

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Soluble transition metal oxide/polymeric acid composites for efficient hole-transport layers in polymer solar cells.

ACS Appl Mater Interfaces

January 2014

Department of Nanobio Materials and Electronics, ‡Heeger Center for Advanced Materials & Research Institute for Solar and Sustainable Energies, §School of Materials Science and Engineering, Gwangju Institute of Science and Technology, Gwangju 500-712, Republic of Korea.

We report a new method for developing a low-temperature solution processed vanadium oxide (s-VOx) and poly(4-styrene sulfonic acid) (PSS) composite to act as an efficient hole-transport layer (HTL) in polymer solar cells (PSCs). By compositing the s-VOx and PSS (s-VOx:PSS), the work function values of the s-VOx:PSS changed from 5.0 to 5.

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Quantum dot-NBD-liposome luminescent probes for monitoring phospholipase A2 activity.

Anal Bioanal Chem

December 2013

Department of Chemistry and the Advanced Materials Research Institute, University of New Orleans, New Orleans, LA, 70148, USA.

In this paper we describe the fabrication and characterization of new liposome encapsulated quantum dot-fluorescence resonance energy transfer (FRET)-based probes for monitoring the enzymatic activity of phospholipase A2. To fabricate the probes, luminescent CdSe/ZnS quantum dots capped with trioctylphosphine oxide (TOPO) ligands were incorporated into the lipid bilayer of unilamellar liposomes with an average diameter of approximately 100 nm. Incorporating TOPO capped quantum dots in liposomes enabled their use in aqueous solution while maintaining their hydrophobicity and excellent photophysical properties.

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Labeling primary amine groups in peptides and proteins with N-hydroxysuccinimidyl ester modified Fe3O4@SiO2 nanoparticles containing cleavable disulfide-bond linkers.

Bioconjug Chem

September 2013

Department of Chemistry and ‡Advanced Materials Research Institute, University of New Orleans, 2000 Lakeshore Drive, New Orleans, Louisiana 70148, United States.

The surface of superparamagnetic silica coated iron oxide (Fe3O4@SiO2) nanoparticles was functionalized with a disulfide bond linked N-hydroxysuccinimidyl (NHS) ester group in order to develop a method for labeling primary amines in peptides/proteins. The nanoparticle labeled proteins/peptides formed after NHS ester reaction with the primary amine groups were isolated using a magnet without any additional purification step. Nanoparticle moieties conjugated to peptides/proteins were then trimmed by cleavage at the disulfide linker with a reducing agent.

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Magnetite nanoparticle coated silica (Fe3O4@SiO2) hybrid nanomaterials hold an important position in the fields of cell imaging and drug delivery. Here we report a large scale synthetic procedure that allows attachment of magnetite nanoparticles onto a silica surface in situ. Many different silica nanomaterials such as Stöber silica nanospheres, mesoporous silica nanoparticles, and hollow silica nanotubes have been coated with a high density layer of water-dispersible magnetite nanoparticles.

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The magnetoelectric effect that occurs in multiferroic materials is fully described by the magnetoelectric coupling coefficient induced either electrically or magnetically. This is rather well understood in bulk multiferroics, but it is not known whether the magnetoelectric coupling properties are retained at nanometre length scales in nanostructured multiferroics. The main challenges are related to measurement difficulties of the coupling at nanoscale, as well as the fabrication of suitable nano-multiferroic samples.

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Fabrication of nanopeapods: scrolling of niobate nanosheets for magnetic nanoparticle chain encapsulation.

J Am Chem Soc

February 2012

Department of Chemistry and Advanced Materials Research Institute, University of New Orleans, New Orleans, Louisiana 70148, USA.

Scrolling of niobate nanosheets (NSs) in the presence of magnetic nanoparticle (NP) chains can lead to peapodlike structures. Surface functional groups on both the NSs and NPs are important in directing the assembly and subsequent NS convolution. The dimensions of the peapods are typically dictated by the diameters of the NPs and the length of the NP chains.

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Water-dispersible iron oxide magnetic nanoparticles with versatile surface functionalities.

Langmuir

March 2011

Advanced Materials Research Institute, University of New Orleans, 2000 Lakeshore Drive, New Orleans, Louisiana 70148, United States.

We report a simple one-pot strategy to prepare surface-function-alized, water-dispersible iron oxide nanoparticles. Small organic molecules that have desired functional groups such as amines, carboxylics, and thiols are chosen as capping agents and are injected into the reaction medium at the end of the synthesis. A diversity of functionalities are effectively introduced onto the surface of the nanoparticles with a minimal consumption of solvents and chemical resources by simply switching the capping ligand to form the ligand shell.

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Fe(x)Pb(4-x)Sb4Se10: a new class of ferromagnetic semiconductors with quasi 1D {Fe2Se10} ladders.

J Am Chem Soc

April 2010

The Advanced Materials Research Institute and Department of Chemistry, University of New Orleans, New Orleans, Louisiana 70148, USA.

A new family of quasi-one-dimensional ferromagnetic selenides with general formula Fe(x)Pb(4-x)Sb(4)Se(10) (0 < or = x < or = 2) was generated by isoelectronic substitution in octahedral positions of Pb atoms by Fe within the structure of Pb(4)Sb(4)Se(10). Two members of this family with x = 0.75 and x = 1 were synthesized as a single phase through direct combination of the elements at 823 K.

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A large quantity synthesis of ultra-thin ZnO nanobelts induced from stacking faults.

J Nanosci Nanotechnol

March 2010

Advanced Materials Research Institute, University of New Orleans, New Orleans, Louisiana 70148, USA.

Thin ZnO nanobelts with average width of 7.5 nm have been synthesized using vapor phase transport method. It was found that stacking faults directed the growth of the thin nanobelts along the (0110) direction with {2110} top/bottom surfaces and {0001} side surfaces.

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A large quantity synthesis of ZnO nanoneedles and their polarity determination.

J Nanosci Nanotechnol

March 2010

Advanced Materials Research Institute, University of New Orleans, New Orleans, Louisiana 70148, USA.

A large quantity of uniform ZnO nanoneedles has been synthesized by thermal evaporation method. Both single and double tip ZnO nanoneedles were found coexistence in the as-synthesized products. The single tip nanoneedles are major products in the synthesis and a few double tip nanoneedles were also observed.

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Quantum dot FRET-based probes in thin films grown in microfluidic channels.

J Am Chem Soc

February 2010

Department of Chemistry and the Advanced Materials Research Institute, University of New Orleans, New Orleans, Louisiana 70148, USA.

This paper describes the development of new fluorescence resonance energy transfer (FRET)-based quantum dot probes for proteolytic activity. The CdSe/ZnS quantum dots are incorporated into a thin polymeric film, which is prepared by layer-by-layer deposition of alternately charged polyelectrolytes. The quantum dots, which serve as fluorescent donors, are separated from rhodamine acceptor molecules, which are covalently attached to the film surface by a varying number of polyelectrolyte layers.

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Friction on the microscale.

Rev Sci Instrum

August 2009

Advanced Materials Research Institute, University of New Orleans, New Orleans, Louisiana 70148, USA.

A new method is presented for measurements of friction of microsized particles on surfaces. Specifically in this work, the particles are alumina with diameters between approximately 1 and 50 microm and the surfaces are InP, Si, and Cr. Friction is analyzed, its components are determined, and the friction coefficients are estimated from the experimental results.

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In this paper, we demonstrate precise voltage contrast image positioning for in situ electron beam (e-beam) nanolithography to integrate nanowires into suspended structures for nanoswitch fabrication. The positioning of the deflection electrodes on the nanowires can be well controlled using a precise voltage contrast image positioning technique, where the error can be minimized to about 10 nm. Using such a method, dispersed nanowires can be sandwiched between two layers of resist and suspended by one e-beam nanolithography process without any etching.

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