A novel memory device based on laterally bridged ZnO nanorods (NRs) in the opposite direction was fabricated by the hydrothermal growth method and characterized. The electrodes were defined by a simple photolithography method. This method has lower cost, simpler process, and higher reliability than the traditional focused ion beam lithography method. For the first time, the negative differential resistance and bistable unipolar resistive switching (RS) behavior in the current-voltage curve was observed at room temperature. The memory device is stable and rewritable; it has an ultra-low current level of about 1 × 10(-13) A in the high resistance state; and it is nonvolatile with an on-off current ratio of up to 1.56 × 10(6). Moreover, its peak-to-valley current ratio of negative differential resistance behavior is greater than 1.76 × 10(2). The negative differential resistance and RS behavior of this device may be related to the boundaries between the opposite bridged ZnO NRs. Specifically, the RS behavior found in ZnO NR devices with a remarkable isolated boundary at the NR/NR interface was discussed for the first time. The memory mechanism of laterally bridged ZnO NR-based devices has not been discussed in the literature yet. In this work, results show that laterally bridged ZnO NR-based devices may have next-generation resistive memories and nanoelectronic applications.

Download full-text PDF

Source
http://dx.doi.org/10.1021/am404875sDOI Listing

Publication Analysis

Top Keywords

bridged zno
20
negative differential
16
differential resistance
16
laterally bridged
16
resistance behavior
12
zno nanorods
8
memory device
8
current ratio
8
zno nr-based
8
nr-based devices
8

Similar Publications

A microporous zincophosphate with the idealized formula NaZn[Zn(PO)] was obtained through high-temperature hydrothermal synthesis and characterized by scanning electron microscopy, microprobe analysis and X-ray diffraction. The orthorhombic compound, which crystallizes in acentric space group Pna2 with unit-cell parameters a = 12.9901 (2), b = 16.

View Article and Find Full Text PDF

Discrimination of the Synergistic Effect of Different Zinc Active Sites with a Brønsted Acid in Zeolite for Dehydrogenation Cracking of -Octane and Ethane Dehydroaromatization.

Langmuir

December 2024

Key Laboratory for Green Chemical Process of Ministry of Education, Hubei Novel Reactor & Green Chemical Technology Key Laboratory, School of Chemical Engineering and Pharmacy, Wuhan Institute of Technology, Wuhan, Hubei 430205, China.

The synergetic effect of different zinc active sites with a Brønsted acid site (BAS) in Zn-MCM-22 for -octane dehydrogenation cracking and ethane dehydroaromatization was investigated. Zn-MCM-22 catalysts containing ZnO were prepared via incipient wetness impregnation (IM) using liquid ion grafting, whereas those containing [ZnO] were prepared via atom-planting (AP) using the gas dechlorination reaction. The synergetic effects of BAS with micropore incorporated [ZnO] and external surface ZnO species on the dehydrogenation of different molecule size reactants -octane and ethane were compared.

View Article and Find Full Text PDF
Article Synopsis
  • The study examines the impact of adding zinc oxide (ZnO) and titanium dioxide (TiO) nanoparticles to denture base resin on its surface hardness and flexural strength during chewing and occlusal loading.
  • Five groups of acrylic resin samples were created, with one group being a control and the others containing different concentrations of nanoparticles, and their properties were tested using specific machinery.
  • Results showed that the modified denture resins had significantly improved properties, with the highest surface hardness from 1% TiO and the best flexural strength from 1% ZnO, indicating better durability compared to conventional resins.
View Article and Find Full Text PDF

Although photocatalytic disinfection can avoid secondary pollution and other shortcomings compared to traditional disinfection methods, its development is seriously hindered by poor charge separation and transfer efficiency. Herein, we design a Zn-NC (single Zn atoms embedded in nitrogen-doped carbon) bridged ZnO/CN Z-scheme heterojunction (ZnO/Zn-NC/CN) with robust interface contact by a multi-interfacial engineering strategy to achieve highly efficient separation and transfer of charge. Experimental and theoretical analyses demonstrate that the tightly integrated interface and excellent electrical conductivity of Zn-NC electron bridges ensure effective transfer of photogenerated charge carriers.

View Article and Find Full Text PDF

Large internal stress induced nonlinear current-voltage behavior in nanodiamond strengthened ZnO ceramics.

Nat Commun

November 2024

State Key Laboratory for Modification of Chemical Fibers and Polymer Materials, Institute of Functional Materials, College of Materials Science and Engineering, Donghua University, Shanghai, China.

The modulation of the electrostatic potential barrier at grain boundaries determines the performance of many ceramic-based electronics such as varistors. However, conventional protocols relying on complex doping and annealing processes inevitably increase the inhomogeneity of microstructure, which may jeopardize the performance stability and mechanical reliability in service. Instead of doping, herein we demonstrate an effective strategy to modulate the potential barrier in ZnO-based low-voltage varistors by exploiting internal stress-induced piezoelectric polarization.

View Article and Find Full Text PDF

Want AI Summaries of new PubMed Abstracts delivered to your In-box?

Enter search terms and have AI summaries delivered each week - change queries or unsubscribe any time!