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Equipments Used to Measure Body Temperature01:13

Equipments Used to Measure Body Temperature

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Body temperature can be assessed using various devices and measured in Celsius or Fahrenheit.
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A thermometer measures body temperature. The common sites for measuring body temperature are the oral cavity, axillary region, temporal artery, and skin surface, such as the forehead, abdomen, and axilla. True core body temperature is assessed in the rectum, tympanic membrane, pulmonary artery, esophagus, and urinary bladder.
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Biasing metal-semiconductor junctions involves applying a voltage across the junction. Specifically, the metal is connected to a voltage source, while the semiconductor is grounded. This technique is essential for controlling the direction and magnitude of current flow in electronic devices, including diodes, transistors, and photovoltaic cells.
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Room-Temperature Silicon Platform for GHz-Frequency Nanoelectro-Opto-Mechanical Systems.

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A new CMOS technology platform for nanoelectro-opto-mechanical systems integrates electrical, mechanical, and optical signals on a chip. This breakthrough enables mass-scale utilization and advanced signal processing capabilities.

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Area of Science:

  • Nanoelectro-opto-mechanical systems
  • Integrated photonics and electronics

Background:

  • Existing nanoelectro-opto-mechanical systems face challenges with CMOS compatibility, limiting mass production.
  • Need for integrated platforms enabling synergistic signal coexistence on a chip.

Purpose of the Study:

  • To develop a CMOS-compatible technology platform for nanoelectro-opto-mechanical systems.
  • To demonstrate enhanced optomechanical interaction and room-temperature operation.

Main Methods:

  • Utilized piezoelectric interdigitated transducers for electronic driving of mechanical signals.
  • Employed nanocrystalline silicon nanobeams for enhanced optomechanical interaction.
  • Developed a CMOS technology platform for seamless integration.

Main Results:

  • Demonstrated room-temperature operation of devices at 2 GHz.
  • Achieved peak sensitivity down to 2.6 cavity phonons.
  • Proof-of-principle platform successfully integrated with silicon photonics, electronics, and MEMS.

Conclusions:

  • The developed CMOS platform overcomes previous limitations in nanoelectro-opto-mechanical systems fabrication.
  • The technology enables enhanced optomechanical interaction and room-temperature operation.
  • Potential for diverse applications in coherent signal processing for classical and quantum domains.