相关实验视频
Updated: Jun 29, 2025

09:10
Fabrication and Testing of Microfluidic Optomechanical Oscillators
Published on: May 29, 2014
12.2K
由马兰戈尼和热对流诱导的光热微粒子振荡器
Chun Meng1, Fengya Lu2, Nan-Qing Zhang1
1Anhui Province Key Laboratory of Measuring Theory and Precision Instrument, School of Instrument Scienceand Optoelectronics Engineering, Hefei University of Technology, Hefei, Anhui 230009, China.
Langmuir : the ACS journal of surfaces and colloids
|March 29, 2024
概括
本研究介绍了一种用于3D微粒子振荡的光热方法,克服光损伤和方向控制问题. 这种技术可以为软物质应用实现精确的微粒运动.
科学领域:
- 软物质物理学 软物质物理学
- 微流体学 微流体学
- 纳米技术 纳米技术
背景情况:
- 微粒子振荡器对于软物质系统至关重要,但面临着像光损伤和方向控制这样的挑战.
- 现有的方法难以精确控制,并且由于激光聚焦,可能会损害微粒.
研究的目的:
- 开发一种可控3D微粒子振荡的光热方法.
- 为了解决微粒子振荡器中光损伤和定向控制的局限性.
- 为了实现基础物理和细胞操纵的新应用.
主要方法:
- 使用激光加热金膜表面产生光热效应.
- 采用热对流,热泳和引力力量的组合来进行振荡.
- 从微气泡引入马兰戈尼对流来控制振荡方向.
- 使用两个微气泡实现双通道振荡模式.
主要成果:
- 演示了一个具有固定方向控制的3D微粒子振荡器.
- 成功地利用了激光加热黄金膜的光热转换.
- 验证了多种力量 (热对流,热泳,重力,马兰戈尼对流) 对于振荡的协调.
- 在微粒子没有光学损伤的情况下实现了振荡.
结论:
- 光热法为受控微粒子振荡提供了强大的解决方案.
- 这种技术克服了以前微粒子振荡器设计的关键局限性.
- 该方法为微流体学和软物质科学领域的先进应用开辟了道路.
相关概念视频
Joule-Thomson Effect
3.8K
The Joule-Thomson effect, also known as the Joule-Kelvin effect, describes the temperature change of a fluid when it is forced through a valve or porous plug while keeping it in a thermally insulated environment. This experiment is called a throttling process. This is an important effect widely used in refrigeration and the liquefaction of gases.
This experiment forces high-pressure gas through a throttle valve or a porous plug to a lower-pressure region. The gas expands as it passes through to...
This experiment forces high-pressure gas through a throttle valve or a porous plug to a lower-pressure region. The gas expands as it passes through to...
3.8K
Oscillations In An LC Circuit
2.3K
An idealized LC circuit of zero resistance can oscillate without any source of emf by shifting the energy stored in the circuit between the electric and magnetic fields. In such an LC circuit, if the capacitor contains a charge q before the switch is closed, then all the energy of the circuit is initially stored in the electric field of the capacitor. This energy is given by
2.3K
Mechanism of heat transfer
1.2K
Understanding heat transfer mechanisms is essential for understanding how our bodies maintain balance in different environmental conditions. When the environment is thermoneutral, the body is in a state of balance, neither using nor releasing energy to maintain its core temperature. However, when the environment is not thermoneutral, the body employs four heat transfer mechanisms to maintain homeostasis: conduction, convection, evaporation, and radiation. These mechanisms facilitate heat...
1.2K
Standing Waves in a Cavity
918
A household microwave and lasers are examples of standing electromagnetic waves in a cavity. When two conducting metal plates are placed parallel at the nodal planes, it creates a cavity where standing waves are formed. The cavity between the two planes is analogous to a stretched string held at the points x = 0 and x = L. Here, the distance 'L' between the two planes must be an integer multiple of half of the wavelength. The wavelengths that satisfy this condition are given by:
918
Mechanisms of Heat Transfer
322
Heat transfer between the human body and its environment occurs through four main mechanisms: conduction, convection, radiation, and evaporation.
Conduction, accounting for approximately 3% of body heat loss at rest, is the process of exchanging heat between molecules of two materials in direct contact. This can result in both heat loss and gain. For instance, when the body is submerged in water, which conducts heat 20 times more effectively than air, it can either lose or gain significant...
Conduction, accounting for approximately 3% of body heat loss at rest, is the process of exchanging heat between molecules of two materials in direct contact. This can result in both heat loss and gain. For instance, when the body is submerged in water, which conducts heat 20 times more effectively than air, it can either lose or gain significant...
322
Mechanisms of Heat Transfer II
3.2K
In convection, thermal energy is carried by the large-scale flow of matter. Ocean currents and large-scale atmospheric circulation, which result from the buoyancy of warm air and water, transfer hot air from the tropics toward the poles and cold air from the poles toward the tropics. The Earth’s rotation interacts with those flows, causing the observed eastward flow of air in the temperate zones. Convection dominates heat transfer by air, and the amount of available space for the airflow...
3.2K

