基本信息来源于合作网站,原文需代理用户跳转至来源网站获取       
摘要:
The wave-particle duality of light is a controversial topic in modern physics. In this context, this work highlights the ability of the wave-nature of light on its own to account for the conservation of energy in light-matter interaction. Two simple fundamental properties of light as wave are involved: its period and its power P. The power P depends only on the amplitude of the wave’s electric and magnetic fields (Poynting’s vector), and can easily be measured with a power sensor for visible and infrared lasers. The advantage of such a wave-based approach is that it unveils unexpected effects of light’s power P capable of explaining numerous results published in current scientific literature, of correlating phenomena otherwise considered as disjointed, and of making predictions on ways to employ the electromagnetic (EM) waves which so far are unexplored. In this framework, this work focuses on determining the magnitude of the time interval that, coupled with light’s power P, establishes the energy conserved in the exchange of energy between light and matter. To reach this goal, capacitors were excited with visible and IR lasers at variable average power P. As the result of combining experimental measurements and simulations based on the law of conservation of energy, it was found that the product of the period of the light by its power P fixes the magnitude of the energy conserved in light’s interaction with the capacitors. This finding highlights that the energy exchanged is defined in the time interval equal to the period of the light’s wave. The validity of the finding is shown to hold in light’s interaction with matter in general, e.g. in the photoelectric effect with x-rays, in the transfer of electrons between energy levels in semiconducting interfaces of field effect transistors, in the activation of photosynthetic reactions, and in the generation of action potentials in retinal ganglion cells to enable vision in vertebrates. Finally, the validity of the finding is investigated in the low fre
推荐文章
Discrimination geochemical interaction effects on mineralization at the polymetallic Glojeh deposit,
Backward Elimination
Quadratic polynomial model
Miniature-scale changes
Ordinal–disordinal interaction effect
Akima's polynomial contour map
Immobile element
The contribution of bacteria to organic matter in coal-measure source rocks
Coal-measure source rocks
Organic matter type
Bacteria
Monomethyl alkanes
Alkyl cyclohexane
非衍射波X-wave的仿真
非衍射波
传感器
声场仿真
超声波
An experimental study of interaction between pure water and alkaline feldspar at high temperatures a
Alkaline feldspar
Autoclave
High-temperature and high-pressure experiments
内容分析
关键词云
关键词热度
相关文献总数  
(/次)
(/年)
文献信息
篇名 Probing the Wave Nature of Light-Matter Interaction
来源期刊 凝固态物理国际期刊(英文) 学科 医学
关键词 INFRARED Light-Matter Interaction Conservation Of ENERGY WAVE ENERGY HARVESTING
年,卷(期) ngtwlgjqkyw,(2) 所属期刊栏目
研究方向 页码范围 62-89
页数 28页 分类号 R73
字数 语种
DOI
五维指标
传播情况
(/次)
(/年)
引文网络
引文网络
二级参考文献  (0)
共引文献  (0)
参考文献  (0)
节点文献
引证文献  (0)
同被引文献  (0)
二级引证文献  (0)
2018(0)
  • 参考文献(0)
  • 二级参考文献(0)
  • 引证文献(0)
  • 二级引证文献(0)
研究主题发展历程
节点文献
INFRARED
Light-Matter
Interaction
Conservation
Of
ENERGY
WAVE
ENERGY
HARVESTING
研究起点
研究来源
研究分支
研究去脉
引文网络交叉学科
相关学者/机构
期刊影响力
凝固态物理国际期刊(英文)
季刊
2160-6919
武汉市江夏区汤逊湖北路38号光谷总部空间
出版文献量(篇)
215
总下载数(次)
0
论文1v1指导