Abstract:
An interface block is constituted by a cleaning/drying processing block and a carry-in/carry-out block. The cleaning/drying processing block includes cleaning/drying processing sections and a transport section. The transport section is provided with a transport mechanism. The carry-in/carry-out block is provided with a transport mechanism. The transport mechanism carries substrates in and out of an exposure device.
Abstract:
A method for processing a plurality of substrates after forming a photosensitive film on each substrate includes carrying each substrate into a placement buffer including a plurality of supporters by a first transport mechanism; taking out each substrate from the placement buffer to an interface by a second transport mechanism; carrying each substrate into the exposure device; carrying each substrate out of the exposure device into the placement buffer by the second transport mechanism; taking out each substrate from the placement buffer to the processing section by the first transport mechanism; performing development processing on each substrate; making each substrate stand by at the placement buffer based on timing at which the exposure device can accept each substrate; and making each substrate stand by at the placement buffer based on timing at which the developing device can accept each substrate.
Abstract:
A method for producing urethane compounds includes allowing a primary amine, a urea and/or an N-unsubstituted carbamate, and an alcohol to react in the presence of a compound containing a noncoordinating anion and a metal atom as a catalyst.
Abstract:
Provided is an illuminating device wherein generation of luminance deterioration and luminance nonuniformity is suppressed. An illuminating device (10) is provided with an LED (6) stored inside a storing space (10a), a power supply substrate (8) arranged outside the storing space (10a), and an FPC (7). The FPC (7) extends along a side section (1c) of a case member (1) so that the connecting terminal (7c) is away from the LED (6), and in such state, the connecting terminal (7c) is extracted to the outside from the inside of the storing space (10a).
Abstract:
Provided is an illuminating device wherein generation of luminance nonuniformity is suppressed, while suppressing deterioration of light use efficiency. An illuminating device (10) is provided with an FPC (8), which has at least a part (8a) perpendicularly arranged to a light incoming surface (3a) of a light guide plate (3) and has an LED (7) mounted on the part (8a). The FPC (8) is also provided with a part (8b) positioned below a region between the LED (7) and the light incoming surface (3a), and the part (8b) is tilted in a diagonally downward direction toward the light incoming surface (3a).
Abstract:
Disclosed is a backlight unit (49) comprising a light-emitting unit (UT) and a light guide plate (42) for receiving light from the light-emitting unit (UT). In this backlight unit (49), a light-receiving surface (42S) of the light guide plate (42) receiving light from an LED (12) is provided with a recess (DH) for housing an FFC (14) which connects mounted boards (11) arranged side by side.
Abstract:
Disclosed is a display device configured to prevent its size from becoming large. The display device includes a case member (4) and attachment pieces (8) for attachment to an external member, where the attachment pieces (8) are provided on the case member (4). The case member (4) is constituted of a combination of a frame (5) and a bezel (6). Corner portions (5c) of a side section (5b) of the frame (5) disposed at locations of prescribed corner sections (4d) of the plurality of corner sections (4d) of the case member (4) are formed into chamfered surfaces. Also, attachment pieces (8) are disposed at least at the prescribed corner sections (4d) of the case member (4).
Abstract:
Electrode terminals (33a, 33b) of an LED (3) and a mounting wiring (42) of an FPC (4) are bonded by using a conductive adhesive, and a metal slug (31) of the LED (3) and a heat dissipation wiring (43) of the FPC (4) are bonded by using the conductive adhesive. The heat dissipation wiring (43) corresponds to each of the LEDs (3) and isolates the LEDs one from the other, not permitting electricity to be carried between them.
Abstract:
Disclosed is a display device wherein a light emitting element can have a longer service life, while suppressing luminance unevenness without causing an increase in cost or size. The display device comprises a light guide plate (21), an LED (25) that is arranged on the side of at least one corner portion (21d) of the light guide plate (21), a frame (4) that has a lateral portion (4b), and a bezel (5) that has a lateral portion (5b). The LED (25) is attached to a part (4d) of the lateral portion (4b) of the frame (4), and the part (4d) is thermally connected to a part (5d) of the lateral portion (5b) of the bezel (5).