Abstract:
The invention provides a white light illumination device including an ultraviolet excitation light source and an ultraviolet excitable aluminosilicate phosphor. The ultraviolet excitable aluminosilicate phosphor has a formula as (M1-x,Rex)aAlbSicOd:D, wherein M is Mg, Ca, Sr, Ba or combination thereof. In addition, Re is Y, La, Pr, Nd, Eu, Gd, Tb, Ce, Dy, Yb, Er, Sc, Mn, Zn, Cu, Ni, Lu or combination thereof, while 0
Abstract:
The invention provides borate phosphors composed of Ma(Mb)1-xBO3:(Mc)x, wherein Ma is Li, Na, K, Rb, Cs, or combinations thereof, Mb is Mg, Ca, Sr, Ba, Zn or combinations thereof, Mc is Y, La, Pr, Nd, Eu, Gd, Tb, Ce, Dy, Yb, Er, Sc, Mn, Zn, Cu, Ni, Lu, or combinations thereof, and 0≦x≦0.3. The borate phosphors emit visible light under the excitation of ultraviolet light or blue light, and may be further collocated with different colored phosphors to provide a white light illumination device.
Abstract translation:本发明提供由Ma(Mb)1-xBO 3:(Mc)x组成的硼酸盐荧光体,其中Ma是Li,Na,K,Rb,Cs或其组合,Mb是Mg,Ca,Sr,Ba,Zn或组合 其中,Mc为Y,La,Pr,Nd,Eu,Gd,Tb,Ce,Dy,Yb,Er,Sc,Mn,Zn,Cu,Ni,Lu或其组合,0 <= x <= 0.3 。 硼酸盐荧光体在紫外光或蓝光的激发下发射可见光,并且可以用不同的着色荧光体进一步配置以提供白光照明装置。
Abstract:
A method of manufacturing LED light string includes the steps of forming an LED light body from multiple serially connected printed circuit boards, fixing the LED light body to a base, and connecting a light-transmissible shell to the light body to form a cluster lamp; preparing a power cord, to which multiple lamp sockets are serially connected; fitting multiple cluster lamps to the lamp sockets on the power cord, so that the LED light bodies are made to emit light. A lampshade is detachably engaged with each lamp socket. The lampshade and the lamp socket may be differently designed to create romantic feeling. The number of LED light bodies on each cluster lamp and the number of cluster lamps on one LED light string may be varied as desired to increase the brightness of the light string while reduce the manufacturing cost of the LED light string.
Abstract:
A method of manufacturing LED light string includes the steps of forming an LED light body from multiple serially connected printed circuit boards, fixing the LED light body to a base, and connecting a light-transmissible shell to the light body to form a cluster lamp; preparing a power cord, to which multiple lamp sockets are serially connected; fitting multiple cluster lamps to the lamp sockets on the power cord, so that the LED light bodies are made to emit light. A lampshade is detachably engaged with each lamp socket. The lampshade and the lamp socket may be differently designed to create romantic feeling. The number of LED light bodies on each cluster lamp and the number of cluster lamps on one LED light string may be varied as desired to increase the brightness of the light string while reduce the manufacturing cost of the LED light string.
Abstract:
A method of producing a light-emitting-diode (LED) rope light includes the steps of preparing a plurality of light seats defining a recess therein and a plurality of metal wires having two conductive plates connected to two ends thereof; positioning two conductive plates from two different metal wires in each light seat; forming the light seats into light-emitting diodes; serially connecting the light seats to provide an LED light string; positioning the LED light string into a hollow power cord holder with two electrodes of the LED light string connected to two power cords embedded in the power cord holder; and quickly enclosing said power cord holder with a transparent outer tube by way of injection molding to form an LED rope light.
Abstract:
The present invention relates to the LED light string manufacturing method, wherein the two end of a plurality of wire portions are conductively connected separately with a L-shaped terminal, a row of light sockets are provided with wire holes insides, then one end of the two wire portions passes through the light socket from bottom to top, and the two terminals protrude and exposed over the surface of the light socket are manufactured into LCD, so as to form a row of LCD light string, then the plus and minus terminals on the original two ends of the LED light strings are connected correspondingly to the power supply line. Thus, achieving the effects of reducing the cost expediting the operation speed, and enhancing the safety of the electric appliance.
Abstract:
A closed-loop controlled apparatus and method for preventing contamination to a low pressure chemical vapor deposition chamber (LPCVD) are provided. The apparatus includes an exhaust vent equipped with a butterfly valve for controlling a flow rate through the vent. The exhaust vent is connected to a vacuum outlet and a vacuum pump on a process chamber in parallel with and bypassing a gate valve such that the exhaust vent can be opened for the continuous pumping of the process chamber during wafer loading and unloading steps. The exhaust vent may be constructed by two end conduits that have a larger diameter which are connected by a middle conduit that has a smaller diameter such that during vacuum evacuation, the fluid flow rate in the small diameter conduit is at least four times that in the large conduit to effectively prevent the deposition and blockage of the small conduit by reaction by-products or contaminating particles. The butterfly valve installed in the exhaust vent provides an indication of the degree of blockage of the vent and enables a process controller to shut-off the process chamber for wet cleaning when a blockage has been detected for preventing chamber contamination.
Abstract:
The invention provides a phosphor composed of (M1−xREx)5SiO4−yX6+2y, wherein M is Ba individually or in combination with at least one of Mg, Ca, Sr, or Zn; RE is Y, La, Pr, Nd, Eu, Gd, Tb, Ce, Dy, Yb, Er, Sc, Mn, Zn, Cu, Ni, or Lu; X is F, Cl, Br, or combinations thereof; 0.001≦x≦0.6, and 0.001≦y≦1.5. Under excitation, the phosphor of the invention emits visible light and may be collocated with other phosphors to provide a white light illumination device.
Abstract:
A fluorescent material of Formula (I) is provided. In Formula (I), all the variables thereof are described in the specification. The invention also provides a solar cell with the disclosed fluorescent material. The solar cell with the fluorescent material includes a solar cell and a fluorescent layer including the disclosed fluorescent material of Formula (I) coating on the solar cell.
Abstract:
The invention provides borate phosphors composed of Ca1-xAlBO4:Mx, wherein M is Pr3+, Nd3+, Eu3+, Eu2+, Gd3+, Tb3+, Ce3+, Dy3+, Yb2+, Er3+, Sc3+, Mn2+, Zn2+, or combinations thereof, and 0≦x≦0.3. The invention also provides borate phosphors composed of Zn1-x-yB2O4:Eu3+x, Bi3+y, wherein 0≦x≦0.6 and 0≦y≦0.6. The borate phosphors emit visible light under the excitation of ultraviolet light or blue light, and may be further collocated with different colored phosphors to provide a white light illumination device.