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多功能的芯片上等离子网格由Kekulé的超表面实现
Jinguo Liu1,2, Yufan Luo1, Airong Zhao3
1College of Physics, Key Laboratory for Intelligent Nano Materials and Devices of Ministry of Education, Nanjing University of Aeronautics and Astronautics, Nanjing, China.
Nature communications
|November 26, 2025
概括
研究人员开发了一种新的Kekulé超表面,以精确控制由表面等离子极子子 (SPPs) 形成的光学晶格. 这一突破为安全的光通信和芯片上的光子设备提供了新的可能性.
科学领域:
- 光子学和纳米技术的使用.
- 光学和光学设备的光学.
背景情况:
- 表面等离子极子 (SPP) 携带光学信息,对于安全的光学通信至关重要.
- 控制SPP网格属性 (强度,光谱,空间) 是一个重大挑战.
研究的目的:
- 开发一个多功能Kekulé超表面,用于创建定制的光学SPP网格.
- 为了证明SPP格子的可控制的空间和强度分布.
- 探索在芯片上发光和安全成像中的应用.
主要方法:
- 凯库莱金属表面的理论和实验开发.
- 使用非侵入性泄漏辐射显微镜可视化SPP格子.
- 叠加翅膀形的纳米裂集以量身定制网格属性.
主要成果:
- 使用Kekulé元表面,证明了SPPs在各种光学格子中的定位.
- 成功地定制了SPP格子站点的空间分布和相对强度.
- 展示了可配置的芯片内发光器阵列和安全的成像加密/解密.
结论:
- 推出了一种多功能 Kekulé 超表面平台,用于生成定义良好的 SPP 格子.
- 突出了控制SPP格子的多个自由度,从而实现了丰富的物理现象.
- 为光子元件铺平了道路,在现有技术中具有潜在的应用.
相关概念视频
Interfacial Electrochemical Methods: Overview
Interfacial electrochemical methods focus on the phenomena occurring at the boundary between an electrode and a solution, as opposed to bulk methods that concentrate on the solution's overall properties. These interfacial methods are classified as either static or dynamic based on the presence of a nonzero current in the electrochemical cell and the consistency of analyte concentrations. Static methods, such as potentiometry, measure the cell's potential without any significant current passing...
Fermi Level
The Fermi-Dirac function is represented by an S-shaped curve indicating the probability of an energy state being occupied by an electron at a given temperature. The Fermi level is the energy level at which there is a fifty percent chance of finding an electron, and it is positioned between the lower-energy valence band and the higher-energy conduction band.
At absolute zero temperature, electrons fill all energy states up to the Fermi level, leaving upper states empty. As the temperature rises,...
At absolute zero temperature, electrons fill all energy states up to the Fermi level, leaving upper states empty. As the temperature rises,...
Semiconductors
There is variation in the electrical conductivity of materials - metals, semiconductors, and insulators that are showcased with the help of the energy band diagrams.
Metals such as copper (Cu), zinc (Zn), or lead (Pb) have low resistivity and feature conduction bands that are either not fully occupied or overlap with the valence band, making a bandgap non-existent. This allows electrons in the highest energy levels of the valence band to easily transition to the conduction band upon gaining...
Metals such as copper (Cu), zinc (Zn), or lead (Pb) have low resistivity and feature conduction bands that are either not fully occupied or overlap with the valence band, making a bandgap non-existent. This allows electrons in the highest energy levels of the valence band to easily transition to the conduction band upon gaining...
Design Example: Capacitance Multiplier Circuit
In integrated circuit technology, a capacitance multiplier is often utilized to produce a larger capacitance value when a small physical capacitance falls short. This is achieved by a circuit that multiplies capacitance values by a factor of up to 1000, such that a 10-pF capacitor can replicate the performance of a 100-nF capacitor.
The circuit illustrated in Figure 1 below incorporates two op-amps, with the first operating as a voltage follower and the second acting as an inverting amplifier.
The circuit illustrated in Figure 1 below incorporates two op-amps, with the first operating as a voltage follower and the second acting as an inverting amplifier.

