4,218 publications from this institution
A large array of Schottky UV photodetectors (PDs) based on vertical aligned ZnO nanowires is achieved. By introducing the piezo-phototronic effect, the performance of the PD array is enhanced up to seven times in photoreponsivity, six times in sensitivity, and 2.8 times in detection limit. The UV PD array may have applications in optoelectronic systems, adaptive optical computing, and communication.
First Page
The coupling effect between different properties in a controllable manner is of great interest for getting full understanding of materials, exploring novel physical phenomena and developing new applications. Piezo-phototronics is an emerging field which explores the three-way coupling among mechanical, optical and electrical properties in materials with noncentrosymmetric crystal structure. It has demonstrated its capability to work on different kinds of optoelectronic devices and can be utilized in various applications. Here, we will give a brief review of the tremendous progress, focusing on extended materials, application areas and understanding in the last two years. New material systems including quantum wells, two-dimensional materials and alloys have been investigated in this field. Novel applications in sonophotocatalysis, flexible electronics, photoluminescence and plasmonics have emerged. Meanwhile, temperature dependence of the piezo-phototronic effect was studied for the first time to gain in-depth understanding of the fundamental physics behind the phenomenon. All of this progress demonstrates the power of this three-way coupling effect in extended fields and shows the growing broader interest in different research areas.
Charges induced in triboelectric process are usually referred as a negative effect either in scientific research or technological applications, and they are wasted energy in many cases. Here, we demonstrate a simple, low cost and effective approach of using the charging process in friction to convert mechanical energy into electric power for driving small electronics. The triboelectric generator (TEG) is fabricated by stacking two polymer sheets made of materials having distinctly different triboelectric characteristics, with metal films deposited on the top and bottom of the assembled structure. Once subjected to mechanical deformation, a friction between the two films, owing to the nano-scale surface roughness, generates equal amount but opposite signs of charges at two sides. Thus, a triboelectric potential layer is formed at the interface region, which serves as a charge “pump” for driving the flow of electrons in the external load if there is a variation in the capacitance of the system. Such a flexible polymer TEG gives an output voltage of up to 3.3V at a power density of ∼10.4mW/cm3. TEGs have the potential of harvesting energy from human activities, rotating tires, ocean waves, mechanical vibration and more, with great applications in self-powered systems for personal electronics, environmental monitoring, medical science and even large-scale power.
Nanobelts are a group of materials that have a rectangle-like cross section with typical widths of several hundred nanometers, width-to-thickness ratios of 5–10, and lengths of hundreds of micrometers. In this letter, nanoindentations were made in individual ZnO and SnO2 nanobelts by a cube corner diamond indenter. It is shown that the effect of indentation size is still obvious for indentation depths less than 50 nm. It is also demonstrated that nanomachining of nanobelts is possible using an atomic force microscope tip.
In order to generate complex attractor of chaos, a new chaotic system is constructed chaos based on a presented chaotic system. The system constructed in this paper combines with the presented chaotic system to form a switchable chaotic system. The switchable chaotic system can change its behavior automatism from one to another via a switch selector. The system is implemented based on FPGA by EDA technology, experiment shows a good agree with simulation.
Reflection high-energy electron diffraction is a Bragg case, in which the beams to be detected are those reflected from the bulk crystal surface. Owing to the strong interaction between the incident electron and the crystal atoms, multiple (or dynamical) scattering is very strong. Although the positions of RHEED beams can generally be predicted by kinematical scattering theory, quantitative analysis of RHEED patterns relies on dynamical calculations. In this chapter, we will first illustrate the quantum mechanical approach for electron diffraction. Then we will outline a few commonly used dynamical theories accompanied by some calculated results.