1. Field of the Invention
The present invention relates to nanostructure optical insulating membranes, and more particularly, to a nanostructure optical insulating membrane adapted to provide thermal insulation, enhance illumination, spare lighting equipment, and enable users to see farther.
2. Description of the Prior Art
Insulating membranes are typically used in vehicles and buildings to block UV light and infrared light. Insulating membranes not only block incoming light rays which may harm the human body and damage furniture/fixtures, but also decrease indoor temperature which can otherwise increase because of exposure to unblocked sunlight, thereby making insulating membranes a good energy-saving means.
Insulating membranes currently available on the market block more than 99% of UV light and 35% to 97% of infrared light. An insulating membrane fabrication process is usually based on multi-coating technology, producing optical products with coats numbered in the dozens or even totaling to a hundred. Hence, the fabrication process is complex and expensive. More badly, an insulating membrane that comprises one or more metal layers decreases visible light transmission to 20-70%, which is an inevitable drawback of the prior art.
A building equipped with insulating membranes is disadvantaged by poor illumination and excessive internal reflection. Owing to insulating membrane-induced internal reflection, people looking out of a window of the building cannot have a clear view of the outside, that is, they are unable to see farther. The driver of a vehicle equipped with insulating membranes is denied access to images in rear view mirrors and therefore likely to end up in a traffic accident.
Accordingly, an issue calling for an immediate solution involves developing a nanostructure optical insulating membrane that overcomes the aforesaid drawbacks of the prior art.
It is a primary objective of the present invention to disclose a nanostructure optical insulating membrane adapted to provide thermal insulation, enhance illumination, and enable users to see farther.
The present invention discloses a nanostructure optical insulating membrane, comprising: a substrate; a nanostructure layer formed on the substrate to increase visible light transmission and decrease internal reflection upon exposure to light; and a metal layer formed on the nanostructure layer to block infrared light upon exposure to light and thereby provide thermal insulation.
In a preferred embodiment, the substrate and the nanostructure layer of the nanostructure optical insulating membrane of the present invention are made of transparent polymeric plastics, such as PC, PMMA, and PET. The nano structure layer is formed on the substrate by UV curing or hot embossing and comprised of a plurality of nano-structured three-dimensional cones aligned periodically or non-periodically. Each of the nano-structured three-dimensional cones is 100 nm to 600 nm wide and 100 nm to 750 nm high. The metal layer is gold, silver, aluminum, nickel, copper, chromium, tin oxide, or indium tin oxide (ITO) and has a thickness of 150 nm or less. The nanostructure optical insulating membrane further comprises a protective layer formed on the metal layer to protect the metal layer and the nanostructure layer. The protective layer, which is a hard coat, is formed on the metal layer by electroplating and made of silicon dioxide (SiO2).
Unlike the prior art, the prevent invention discloses a nanostructure optical insulating membrane that, upon exposure to light, enhances visible light transmission, reduces internal reflection, provides thermal insulation by blocking infrared light by means of a metal layer, and enables users to see farther.
The following specific embodiments are provided to illustrate the present invention. Persons skilled in the art can readily gain an insight into other advantages and features of the present invention based on the contents disclosed in this specification.
Referring to
The constituent parts of the nanostructure optical insulating membrane 1 of the present invention are described in detail as follows.
The drawing illustrates the substrate 10 but is not intended to limit the dimensions of the substrate 10. In practice, the dimensions the substrate 10 are selectively designed when necessary. In this embodiment, the substrate 10 is made of transparent polymeric plastics, such as PC, PMMA, and PET.
The nanostructure layer 11 is formed on the substrate 10 such that the nanostructure optical insulating membrane 1, upon exposure to light, increases visible light transmission, decreases internal reflection, and allows users to see farther.
In this embodiment, the nanostructure layer 11 is made of transparent polymeric plastics, Such as PC, PMMA, and PET and is formed on the substrate 10 by, preferably, hot embossing. Preferably, both the nanostructure layer 11 and the substrate 10 are made of the same material. For instance, both the nanostructure layer 11 and the substrate 10 are made of PET; or, alternatively, both the nanostructure layer 11 and the substrate 10 are made of PMMA.
In another preferred embodiment, the nanostructure layer 11 is formed on the substrate 10 by UV curing. Where the substrate 10 is made of PET, the nanostructure layer 11 is preferably made of a polymer susceptible to UV curing.
The nanostructure layer 11 comprises a plurality of nanostructured three-dimensional cones aligned periodically or non-periodically. Each of the nanostructured three-dimensional cones has a width (W) of 100 nm, 600 nm, or between 100 nm and 600 nm (i.e., 100 nm≦W≦600 nm), and a height (H) of 100 nm, 750 nm, or between 100 nm and 750 nm (i.e., 100 mm≦H≦750 nm). As shown in the drawing, the nanostructured three-dimensional cones of this embodiment are aligned periodically, though the way of aligning the nanostructured three-dimensional cones is not limited to the aforesaid disclosure.
The metal layer 12 is formed on the nanostructure layer 11 such that the nanostructure optical insulating membrane 1, upon exposure to light, blocks infrared light and provides thermal insulation. In this embodiment 4 the metal layer 12 is gold, silver, aluminum, nickel, copper, chromium, tin oxide, or indium tin oxide (ITO) and has a thickness of 150 nm or less.
Referring to
In this embodiment, the protective layer 13 is formed, in the form of a hard coat, on the metal layer 12 by electroplating and is made of silicon dioxide (SiO2).
Accordingly, the present invention discloses a nanostructure optical insulating membrane 1 for increasing visible light transmission and illumination of vehicles to a great extent, decreasing internal reflection inside the vehicles, allowing drivers to gain access to images in rear view mirrors (that is, to see backward farther while driving), and providing thermal insulation.
Efficacy of a nanostructure optical insulating membrane of the present invention is illustrated with the following experimental findings. Referring to
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In short, the present invention discloses a nanostructure optical insulating membrane that, upon exposure to light, enhances visible light transmission, reduces internal reflection, provides thermal insulation by blocking infrared light by means of a metal layer, and enables users to see farther.
The aforesaid embodiments merely serve as the preferred embodiments of the present invention. The aforesaid embodiments should not be construed as to limit the scope of the present invention in any way. Hence, any other changes can actually be made in the present invention. It will be apparent to those skilled in the art that au equivalent modifications or changes made to the present invention, without departing from the spirit and the technical concepts disclosed by the present invention, should fall within the scope of the appended claims.
Number | Date | Country | Kind |
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095148117 | Dec 2006 | TW | national |