from    
to    
search  

 


【图书馆系列讲座】英语学术论文写作
Colloidal synthesis approach for energy materials
物理系colloquium: Multi-fermion-clustering Physics
A journey from carbonization to decarbonization
报告题目:
Subnanotesla, shield-less, field-compensation-free, wave-mixing-enhanced body-temperature atomic magnetometry for biomagnetism
 报告人:
Lu Deng
Senior physicist, National Institute of Standards and Technology
报告时间:
2018-05-28 13:30
报告地点:
物理系理科楼C302
主办单位:
物理系
  简介:
Human nervous system activities produce extremely weak transient magnetic fields at nano-Tesla (nT) to pico-Tesla (pT) levels during the exchange of information. The ability to study these dynamic bio-magnetic impulses in situ under ambient conditions would therefore provide unique insight into real-time physiological processes. We report an optical inelastic-wave-mixing-enhanced atomic magnetometry technique that results in sub-nT magnetic field detection at temperatures compatible with the human body without magnetic field shielding, zero-field compensation, or RF-modulation/high-frequency phase-locking spectroscopy. Using Gaussian magnetic pulses that mimic the transient magnetic fields created by an action potential on a frog’s nerve, we demonstrate more than 300,000-fold enhancement of magneto-optical rotation signal power spectral density (>550-fold signal amplitude SNR enhancement) over the conventional single-beam Λ−scheme atomic magnetometry method. This new technique may bring possibilities for extremely sensitive magnetic field imaging of any biological systems accessible via an optical fiber (endoscopic) in clinical environments.
今日相关信息
Rortex – A Third Generation and New ...
清华化工论坛第五十三讲-建立国际水平的生...
A Bayesian Approach to Deep Neural Ne...
Evolution of the magnetic excitations...
基于材料基因组科学与工程探索新型储能材料
 
同类别相关信息
Topology and Higher symmetry under ...
Entanglement Steering in Adaptive C...
Characterization of computational p...
世纪物理情系列讲座 第19讲:Non-Herm...
Molecular Electronics and Single Mo...
学术活动