2,070 results match your criteria: "School of Electronic Science and Engineering[Affiliation]"

Flexible and stable piezoelectric nanogenerators based on monoclinic phase CsPbBr perovskite nanocrystals.

Nanoscale

December 2024

Advanced Photonics Center, School of Electronic Science and Engineering, Southeast University, Nanjing, 210096, P. R. China.

CsPbBr perovskite has garnered significant attention in the field of optoelectronics due to its exceptional photoelectric properties. In this study, we report the fabrication of a piezoelectric nanogenerator (PNG) composed of a composite of monoclinic phase CsPbBr nanocrystals and polydimethylsiloxane. This is the first instance of a PNG based on the monoclinic phase of CsPbBr.

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Empowering DNA-Based Information Processing: Computation and Data Storage.

ACS Appl Mater Interfaces

December 2024

Key Laboratory of Spectrochemical Analysis and Instrumentation, Ministry of Education, State Key Laboratory of Physical Chemistry of Solid Surfaces, Department of Chemical Biology, College of Chemistry and Chemical Engineering, Innovation Laboratory for Sciences and Technologies of Energy Materials of Fujian Province (IKKEM), Department of Electronic Engineering, School of Electronic Science and Engineering, Xiamen University, Xiamen 361005, China.

Information processing is a critical topic in the digital age, as silicon-based circuits face unprecedented challenges such as data explosion, immense energy consumption, and approaching physical limits. Deoxyribonucleic acid (DNA), naturally selected as a carrier for storing and using genetic information, possesses unique advantages for information processing, which has given rise to the emerging fields of DNA computing and DNA data storage. To meet the growing practical demands, a wide variety of materials and interfaces have been introduced into DNA information processing technologies, leading to significant advancements.

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Aberration calculation of microlens array using differential algebraic method.

Ultramicroscopy

November 2024

Key Laboratory for Physical Electronics and Devices of the Ministry of Education, School of Electronic Science and Engineering, Xi'an Jiaotong University, Xi'an, 710049, People's Republic of China. Electronic address:

Microlens array (MLA), through which all the sub-beams are focused, is widely used in multi-electron-beam systems. In this work, based on the differential algebraic (DA) method, we propose an approach in calculating the high-order aberrations for both axial and off-axial microlenses, considering the multipole fields that are introduced by the neighborhood structures in MLA, as well as the rotationally symmetric field. To perform the DA calculation, the electric fields of the microlenses are analyzed by using the azimuthal Fourier analysis and the Fourier-Bessel series Expansion.

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Microfluidic SERS biosensor based on Au-semicoated photonic crystals for melanoma diagnosis.

Biosens Bioelectron

November 2024

State Key Laboratory of Digital Medical Engineering, School of Chemistry and Chemical Engineering, Southeast University, Nanjing, 210096, China; State Key Laboratory of Digital Medical Engineering, School of Electronic Science and Engineering, Southeast University, Nanjing, 211189, China. Electronic address:

Surface-enhanced Raman scattering (SERS) shows great promise for early diagnosis due to its high specificity and rapid detection capabilities. However, its application is often hindered by substrate instability and insufficient interaction between the substrate and incident light. To address these challenges, a photonic-plasmonic strategy is often employed to enhance sensing performance but it is generally limited by the low efficiency of plasmonic metal and optical cavity resonances.

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Implantable peripheral nerve electrodes are crucial for monitoring health and alleviating symptoms of chronic diseases. Advanced compliant electrodes have been developed because of their biomechanical compatibility. However, these mechanically tissue-like electrodes suffer from unmanageable operating forces, leading to high risks of nerve injury and fragile electrode-tissue interfaces.

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AI-nano-driven surface-enhanced Raman spectroscopy for marketable technologies.

Nat Nanotechnol

December 2024

School of Electronic Science and Engineering, State Key Laboratory of Physical Chemistry of Solid Surfaces, College of Chemistry and Chemical Engineering, IKKEM, Xiamen University, Xiamen, China.

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Piezoelectricity, a fundamental property of perovskite ferroelectrics, endows the materials at the heart of electromechanical systems spanning from macro to micro/nano scales. Defect engineering strategies, particularly involving heterovalent trace impurities and derived vacancies, hold great potential for adjusting piezoelectric performance. Despite the prevalent use of defect engineering for modification, a comprehensive understanding of the specific features that positively impact material properties is still lacking, this knowledge gap impedes the advancement of a universally applicable defect selection and design strategy.

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Two-dimensional flat-band solitons in superhoneycomb lattices.

Nanophotonics

September 2024

Departamento de Física and Centro de Física Teórica e Computacional, Faculdade de Ciências, Universidade de Lisboa, Campo Grande, Ed. C8, Lisboa 1749-016, Portugal.

Flat-band periodic materials are characterized by a linear spectrum containing at least one band where the propagation constant remains nearly constant irrespective of the Bloch momentum across the Brillouin zone. These materials provide a unique platform for investigating phenomena related to light localization. Meantime, the interaction between flat-band physics and nonlinearity in continuous systems remains largely unexplored, particularly in continuous systems where the band flatness deviates slightly from zero, in contrast to simplified discrete systems with exactly flat bands.

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Fabry-Pérot (F-P) cavity and metal hole array are classic photonic devices. Integrating F-P cavity with holey metal typically enhances interfacial reflection and dampens wave transmission. In this work, a hybrid bound surface state is found within rectangular metal holes on a silicon substrate by merging an extraordinary optical transmission (EOT) mode and a high-order F-P cavity mode both spatially and spectrally.

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Orthogonally and linearly polarized green emission from a semipolar InGaN based microcavity.

Nanophotonics

January 2024

The School of Electronic Science and Engineering, Xiamen University, Xiamen 361005, China.

Polarized light has promising applications in biological inspections, displays, and precise measurements. Direct emission of polarized light from a semiconductor device is highly desired in order to reduce the size and energy-consumption of the whole system. In this study, we demonstrate a semipolar GaN-based microcavity light-emitting diode (MCLED) that could simultaneously produce green light with perpendicular and parallel polarizations to the -axis.

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Manipulating chiral photon generation from plasmonic nanocavity-emitter hybrid systems: from weak to strong coupling.

Nanophotonics

February 2024

State Key Laboratory of Precision Spectroscopy, School of Physics and Electronic Science, East China Normal University, Shanghai 200241, China.

By confining light into a deep subwavelength scale to match the characteristic dimension of quantum emitters, plasmonic nanocavities can effectively imprint the light emission with unique properties in terms of intensity, directionality, as well as polarization. In this vein, achiral quantum emitters can generate chiral photons through coupling with plasmonic nanocavities with either intrinsic or extrinsic chirality. As an important metric for the chiral-photon purity, the degree of circular polarization (DCP) is usually tuned by various scattered factors such as the nanocavity design, the emitter type, and the coupling strategy.

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Transparent ultrasonic transducers based on relaxor ferroelectric crystals for advanced photoacoustic imaging.

Nat Commun

December 2024

Electronic Materials Research Laboratory, Key Lab of Education Ministry and State Key Laboratory for Mechanical Behavior of Materials, School of Electronic Science and Engineering, Xi'an Jiaotong University, Xi'an, China.

Article Synopsis
  • - Photoacoustic imaging is a non-invasive technique useful for research and clinical diagnosis, but achieving high resolution and fast frame rates is difficult.
  • - A new transparent ultrasonic transducer design using advanced piezoelectric materials has been developed to improve image quality, achieving a frequency of 28.5 MHz and a significant increase in sensitivity—four times better than existing options.
  • - This innovation allows for improved monitoring of microvasculature in the brain during seizures, with enhanced signal-to-noise ratios, potentially advancing the effectiveness of photoacoustic imaging systems.
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Article Synopsis
  • * A novel plasmonic sponge has been developed that enhances solar evaporation efficiency to 131% by utilizing advanced 3D nanostructures for better heat localization and full-solar-spectrum absorption.
  • * This 3D plasmonic sponge not only improves freshwater production but also serves as a versatile water purification tool for various types of contaminated water, potentially alleviating freshwater shortages.
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Flexible strain monitoring of hand and joint muscle movement is recognized as an effective method for the diagnosis and rehabilitation of neurological diseases such as stroke and Parkinson's disease. However, balancing high sensitivity and large strain, improving wearing comfort, and solving the separation of diagnosis and treatment are important challenges for further building tele-healthcare systems. Herein, a hydrogel-based optical waveguide stretchable (HOWS) sensor is proposed in this paper.

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Article Synopsis
  • High-speed logic modulation of terahertz (THz) waves is essential for future communication technologies, but there is a current gap in technology.
  • This research introduces a dual gate-controlled metasurface that allows for independent control of electron transport, leading to multiple electronic states and diverse spectrum transformations.
  • The study successfully implements key logical functions (AND, OR, XOR, XNOR, NOR, NAND) at speeds exceeding 250 picoseconds, offering a new method for fast, secure THz wave communication.
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Fast Seawater Desalination Integrated with Electrochemical CO Reduction.

Angew Chem Int Ed Engl

December 2024

Collaborative Innovation Center of Ecological Civilization, School of Chemistry and Chemical Engineering, Hainan University, Haikou, Hainan, 570228, China.

Coupling desalination with electrocatalytic reactions is an emerging approach to simultaneously addressing freshwater scarcity and greenhouse gas emissions. However, the salt removal rate in such processes is slow, and the applicable water sources are often limited to those with high salt concentrations. Herein, we show high-performance electrocatalytic desalination by coupling with electrochemical CO reduction using a carbon catalyst.

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Experimental Demonstration of Drone-Based Quantum Key Distribution.

Phys Rev Lett

November 2024

National Laboratory of Solid State Microstructures, School of Electronic Science and Engineering, School of Physics, College of Engineering and Applied Sciences, and Collaborative Innovation Center of Advanced Microstructures, Nanjing University, Nanjing 210093, China.

Quantum state transferring has been demonstrated using drones via entanglement distribution. Here, we demonstrate the first drone-based quantum task for quantum key distribution (QKD). Compact and polarization-maintaining acquisition, pointing, and tracking systems and QKD modules are developed and loaded on a homemade octocopter with a takeoff weight of 30 kg.

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Miniaturized silicon-based capacitive six-axis force/torque sensor with large range, high sensitivity, and low crosstalk.

Microsyst Nanoeng

November 2024

State Key Laboratory for Manufacturing Systems Engineering, International Joint Laboratory for Micro/Nano Manufacturing and Measurement Technologies, Xi'an Jiaotong University (Yantai) Research Institute for Intelligent Sensing Technology and System, Xi'an Jiaotong University, 710049, Xi'an, China.

Miniaturized six-axis force/torque sensors have potential applications in robotic tactile sensing, minimally invasive surgery, and other narrow operating spaces, where currently available commercial sensors cannot meet the requirements because of their large size. In this study, a silicon-based capacitive six-axis force/torque sensing chip with a small size of 9.3 × 9.

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Flexible mechano-optical dual-responsive perovskite molecular ferroelectric composites for advanced anticounterfeiting and encryption.

Sci Adv

November 2024

Joint International Research Laboratory of Information Display and Visualization School of Electronic Science and Engineering, Southeast University, Nanjing 210096, China.

Article Synopsis
  • Hybrid organic-inorganic molecular ferroelectrics are being developed into flexible, dual-responsive composites for better application in piezoelectric devices, overcoming issues like brittleness.
  • The new SEBS/TMCM-MnCl composite shows impressive mechanical properties, with over 1300% tensile strain, and capabilities like piezoelectricity and photoluminescence, suitable for advanced anticounterfeiting and encryption applications.
  • This research paves the way for innovative designs in optoelectronic materials, leading to more secure password systems and potential advancements in human-machine interaction and robotics.
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The lack of a chemical platform with high spatial dimensional diversity, coupled with the elusive multi-scale amorphous physics, significantly hinder advancements in amorphous electromagnetic wave absorption (EWA) materials. Herein, we present a synergistic engineering of phenolic multiple kinetic dynamics and discrete crystallization thermodynamics, to elucidate the origin of the dielectric properties in amorphous carbon and the cascade effect during EWA. Leveraging the scalability of phenolic synthesis, we design dozens of morphologies from the bottom up and combine with in-situ pyrolysis to establish a nanomaterial ecosystem of hundreds of amorphous carbon materials.

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The photocatalytic proficiency of BiTiO is hindered by its inadequate solar energy harnessing capability and swift electron-hole recombination dynamics. In the investigation, the study innovated Bi metal oxide heterostructures by embedding Bi nanoparticle-modified BiTiO composites, systematically synthesizing a suite of Bi/BT materials through meticulous tuning of the Bi and Ti precursor ratios. Notably, the Bi/BT-2 series was examined for its photocatalytic performance in tetracycline (TC) degradation.

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Organic/silicon hybrid solar cells have attracted much interest due to their cheap fabrication process and simple device structure. A category of organic substances, Dibenzothiophene-Spirobifluorene-Dithiophene (DBBT-mTPA-DBT), comprises dibenzo [d,b] thiophene and 3-(3-methoxyphenyl)-6-(4-methoxyphenyl)-9-Carbazole, which function as electron donors. In contrast, methanone is an electron acceptor, with an ∆Est of 3.

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In this paper, a high-efficiency compact power amplifier is designed and fabricated with a 0.25 μm GaN high electron mobility transistor (HEMT) to meet the demands of a high integration level and high efficiency for microwave wireless power transfer (WPT) systems. The proposed power amplifier (PA) is implemented using an internally matched method to achieve a compact circuit size.

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Topic Editorial on Flexible Electronics.

Micromachines (Basel)

November 2024

Interdisciplinary Research Center, School of Electronic Science and Engineering, Southeast University, Nanjing 211189, China.

Fields such as the Internet of Things (IoT), smart healthcare, and intelligent manufacturing are at the forefront of technological advancement, involving the extensive deployment of numerous sophisticated electronic systems and devices [...

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To investigate the impact of empathy on prosocial behavior and the underlying psychological mechanisms among college students, this study surveyed 840 participants using the Empathy Scale, the Prosocial behavior Scale, the Moral Identity Scale, and the Sense of Security Scale. The results revealed that (1) empathy significantly and positively predicted prosocial behavior among college students; (2) moral identity partially mediated the relationship between empathy and prosocial behavior; (3) a sense of security moderated the relationship between moral identity and prosocial behavior. These findings offer important theoretical and practical implications, enriching the theoretical framework and providing educators and students with valuable guidance.

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