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52results about How to "Optimizing light path" patented technology

Front electrode including transparent conductive coating on patterned glass substrate for use in photovoltaic device and method of making same

This invention relates to a photovoltaic device including an electrode such as a front electrode / contact. In certain example embodiments, the front electrode of the photovoltaic device includes a multi-layered transparent conductive coating which is sputter-deposited on a textured surface of a patterned glass substrate. In certain example embodiments, a maximum transmission area of the substantially transparent conductive front electrode is located under a peak area of a quantum efficiency (QE) and / or QEx (photon flux of solar radiation) curve of the photovoltaic device and a light source spectrum used to power the photovoltaic device. In certain example embodiments, the front electrode includes a transparent conductive layer of or including one or more of (i) titanium zinc oxide doped with aluminum and / or niobium, and / or (ii) titanium niobium oxide.
Owner:GUARDIAN GLASS LLC

Front electrode including pyrolytic transparent conductive coating on textured glass substrate for use in photovoltaic device and method of making same

A photovoltaic device includes a front electrode on a textured front glass substrate. In certain example embodiments, the glass substrate is textured via roller(s) and / or etching to form a textured surface. Thereafter, a front electrode is formed on the textured surface of the glass substrate via pyrolysis. The front electrode may be of or include a transparent conductive oxide (TCO) such as tin oxide and / or fluorinated tin oxide in certain example embodiments. In certain example instances, this is advantageous in that efficiency of the photovoltaic device can be improved by increasing light absorption by the active semiconductor via both increasing light intensity passing through the front glass substrate and front electrode, and increasing the light path in the semiconductor photovoltaic conversion layer.
Owner:GUARDIAN GLASS LLC

Front electrode including transparent conductive coating on etched glass substrate for use in photovoltaic device and method of making same

Certain example embodiments of this invention relate to a front electrode provided on an etched / patterned front glass substrate for use in a photovoltaic device or the like. The glass is a low-iron soda-lime-silica based glass. Etching of the glass may include immersing the soda-lime-silica based glass in an acid inclusive solution such as hydrofluoric acid (e.g., HF in aqueous solution) and / or hydrofluoric acid with a buffer, in order to selectively dissolve some of the glass thereby producing at least one textured / patterned substantially transparent surface of the glass substrate. A front electrode (single or multi-layered) is then formed (e.g., via sputter-deposition) on the textured surface of the front glass substrate, and may be used in a photovoltaic device or the like.
Owner:GUARDIAN GLASS LLC

Wearable intelligent device, interaction method of wearable intelligent device and wearable intelligent device system

The invention relates to a wearable intelligent device, an interaction method of the wearable intelligent device and a wearable intelligent device system. The wearable intelligent device comprises a device frame, a micro projector, a spectroscope, an image sensing unit, a retina position sensing unit, and a central data center, wherein the micro projector is suitable for projecting a graphic interface to the spectroscope; the spectroscope is suitable for receiving the projected graphic interface and forming a real image of the graphic interface in human eyes; the image sensing unit is suitable for sensing external scene information, and converting the external scene information into scene image data; the retina position sensing unit is suitable for sensing positions of the eyes and a changing mode of the positions along with time, and converting the positions into position data; the central data center is at least suitable for converting the changing mode of the positions along with time and the position data into corresponding operation instructions; the central data center further comprises a sharing module; and the sharing module is at least suitable for receiving the operation instructions, and executing an operation of sharing the scene image data to a third-party wearable intelligent device. According to the wearable intelligent device disclosed by the invention, rapid sharing of data is achieved, and user experience is improved.
Owner:SEMICON MFG INT (SHANGHAI) CORP

Imaging lens system, image capturing unit and electronic device

An imaging lens system includes eight lens elements which are, in order from an object side to an image side: a first lens element, a second lens element, a third lens element, a fourth lens element, a fifth lens element, a sixth lens element, a seventh lens element and an eighth lens element. Each of the eight lens elements has an object-side surface facing toward the object side and an image-side surface facing toward the image side. At least one lens element of the imaging lens system has at least one lens surface having at least one inflection point. The imaging lens system has a total of eight lens elements.
Owner:LARGAN PRECISION

Thin-film solar cell and manufacture method thereof

A thin-film solar cell and a manufacture method thereof are provided. The thin-film solar cell comprises a transparent substrate, a first transparent conductive layer, a photovoltaic layer, a second transparent conductive layer and a light reflecting structure. The transparent substrate has a light incident surface and a back surface opposite to the light incident surface. The first transparent conductive layer is disposed on the back surface of the transparent substrate. The photovoltaic layer is disposed on the first transparent conductive layer. The second transparent conductive layer is disposed on the photovoltaic layer. The light reflecting structure is disposed on the second transparent conductive layer. The manufacture method forms the light reflecting structure having a texture structure on the thin film to enhance utilization of light beams in the thin-film solar cell so as to further improve photoelectric conversion efficiency of the thin-film solar cell.
Owner:AURIA SOLAR CO LTD

Photovoltaic device

A large surface area photovoltaic device having high conversion efficiency and excellent mass productivity is provided. A photovoltaic device 100 having a photovoltaic layer 3 comprising a crystalline silicon layer formed on a substrate 1, wherein the crystalline silicon layer has a crystalline silicon i-layer 42, and the crystalline silicon i-layer 42 has a substrate in-plane distribution represented by an average value for the Raman peak ratio, which represents the ratio of the Raman peak intensity for the crystalline silicon phase relative to the Raman peak intensity for the amorphous silicon phase, that is not less than 4 and not more than 8, a standard deviation for the Raman peak ratio that is not less than 1 and not more than 3, and a proportion of regions in which the Raman peak ratio is not more than 4 of not less than 0% and not more than 15%. Also, a photovoltaic device 100 in which the size of the surface of the substrate 1 on which the photovoltaic layer 3 is formed is at least 1 m square, and in which the crystalline silicon i-layer 42 has a substrate in-plane distribution represented by an average value for the Raman peak ratio that is not less than 5 and not more than 8, a standard deviation for the Raman peak ratio that is not less than 1 and not more than 3, and a proportion of regions in which the Raman peak ratio is not more than 4 of not less than 0% and not more than 10%.
Owner:MITSUBISHI HEAVY IND LTD

Optimized integration dual-optical path laser ionization effect simulation system

The present invention discloses an optimized integration dual-optical path laser ionization effect simulation system. The system mainly comprises four portions consisting of a dual-wavelength pulse laser, a dual-optical path attenuation module, a microscopic observation module and a test and control module. The system performs optical path and structure optimization of the whole simulation systemon the basis of achieving 532nm and 1064 dual-wavelength output to more flexibly and rapidly perform researching and verification of a semiconductor device radiation dose rate effect in a laboratory condition, especially to simulate sources of radiation such as a gamma ray and the like being acted on the semiconductor device radiation dose rate effect, and is convenient, rapid, convenient, accurate, high in safety, etc. The optimized integration dual-optical path laser ionization effect simulation system can effectively reduce the test cost, can improve the test efficiency and can shorten thedesign period of radiation hardening.
Owner:INST OF ELECTRONICS ENG CHINA ACAD OF ENG PHYSICS
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