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    • 12. 发明申请
    • METHOD FOR MANUFACTURING A SEMICONDUCTOR DEVICE, SEMICONDUCTOR DEVICE OBTAINED IN THIS WAY AND SUITABLE SUPPORT PLATE FOR THIS SEMICONDUCTOR DEVICE
    • 制造半导体器件的方法,以这种方式获得的半导体器件和适用于该半导体器件的支持板
    • WO02089184A2
    • 2002-11-07
    • PCT/IB0201446
    • 2002-04-22
    • KONINKL PHILIPS ELECTRONICS NVDE SAMBER MARC AVAN VEEN NICOLAAS J AWEEKAMP JOHANNUS WVAN GRUNSVEN ERIK C E
    • DE SAMBER MARC AVAN VEEN NICOLAAS J AWEEKAMP JOHANNUS WVAN GRUNSVEN ERIK C E
    • H01L23/12H01L21/00H01L21/56H01L21/673H01L21/68H01L21/683
    • H01L21/6835H01L24/33
    • The invention relates to a method of manufacturing a semiconductor device (10) comprising a semiconductor element (1), with two or more elements (1) being attached to a support plate (2). It is often desired in such a case that the elements(1) are positioned on the support plate (2) or on a further support plate (22) at a larger mutual distance than in the semiconductor body (100) in which the elements (1) are formed. According to the invention, the support plate (2) is formed as an array of rigid subplates (2A) to which the elements (1) are attached, and the rigid subplates (2A) are interconnected within the plate (2) by means of one or more flexible elements (3). In this way the elements (1) - after they have been attached to the support plate (2) and after they have been separated from each other within the semiconductor body (100) and after stretching of the flexible elements (3) - can be positioned in an accurate manner at a larger mutual distance. Subsequently - or after having been transferred to a further plate (22) - the elements (1) may be provided with an encapsulation (20) and can be mounted on to individual semiconductor devices (10).
    • 本发明涉及一种制造包括半导体元件(1)的半导体器件(10)的方法,其中两个或多个元件(1)附接到支撑板(2)。 通常希望在这样的情况下,元件(1)以比半导体本体(100)中的相互距离更大的相互距离定位在支撑板(2)上或另一个支撑板(22)上,其中元件 1)。 根据本发明,支撑板(2)形成为刚性基板(2A)的阵列,元件(1)附接到其上,并且刚性基板(2A)通过以下方式互连在板(2)内:借助于 一个或多个柔性元件(3)。 以这种方式,元件(1)在它们已经被附接到支撑板(2)之后并且在半导体本体(100)中彼此分离之后并且在柔性元件(3)的拉伸之后可以是 以更大的相互距离以准确的方式定位。 随后 - 或者在已经转移到另一个板(22)之后 - 元件(1)可以设置有封装(20),并且可以安装到单个半导体器件(10)上。
    • 13. 发明专利
    • DE602006002604D1
    • 2008-10-16
    • DE602006002604
    • 2006-04-20
    • KONINKL PHILIPS ELECTRONICS NV
    • HENDRIKS BERNARDUS H WWEEKAMP JOHANNUS WDOBRUSSKIN CHRISTOPH
    • G02B3/14
    • Optical apparatus for modifying a radiation beam, the apparatus including a variable focus lens (1) comprising a first fluid (A) and a second fluid (B) wherein the fluids are immiscible and are separated from each other by a fluid meniscus (6; 106; 206; 306) which is configurable into a configuration which is arranged to modify a predetermined vergence of an input radiation beam (15; 32; 33) and a focus control system. The optical apparatus is characterised in that the apparatus comprises a first redirector arranged to redirect the radiation beam, after having passed once through the fluid meniscus, back towards the fluid meniscus, and a second redirector arranged to further redirect the radiation beam, after having passed twice through the meniscus, back towards the fluid meniscus, wherein the configuration is arranged to further modify the vergence of the radiation beam following each of the redirections, the further modifications being arranged to provide the variable focus lens with an amplified focal power.
    • 18. 发明专利
    • DE602004020055D1
    • 2009-04-30
    • DE602004020055
    • 2004-01-22
    • KONINKL PHILIPS ELECTRONICS NV
    • DE SAMBER MARC AVRANKEN ROGER AWEEKAMP JOHANNUS W
    • G06F3/033G01S7/481G06F3/042G11B7/12
    • The invention relates to an optoelectronic input device ( 10 ) in which the input is formed by detected movements of an object (M), the device comprising an optical module ( 11 ) comprising at least one laser ( 1,1 ') with a cavity for the generation of a measuring radiation beam (S), optical means ( 2 ) for the guidance of the radiation beam (S) to a plane (V) close to the object (M) and conversion means (C) for the conversion of measuring beam radiation reflected and modulated by the object into an electrical signal, wherein the conversion means (C) are formed by a combination of the cavity of the laser ( 1 ) and measuring means ( 3 ) for measuring a change in the cavity during operation, which radiation is caused by reflected radiation entering the cavity. The optical module ( 11 ) comprises the laser ( 1 ) mounted on a mounting board ( 4 ) with its cavity parallel thereto, and the optical means ( 2 ) comprises an optical component ( 2 ) like a mirror ( 2 ) mounted on the board ( 4 ) and aligned to the laser ( 1 ) which directs the beam (S) towards the plane (V). According to the invention the device ( 10 ) comprises a further optical component comprising a block-shaped body ( 5 ) which along side the laser ( 1 ) is directly mounted on the mounting board ( 4 ) and viewed in projection does not show overlap with the laser ( 1 ) and of which at least the upper part ( 5 A) is optically transparent and of which the upper side forms the plane (V) close to the object (M). Such a device ( 10 ) can be relatively compact and, moreover, it can be manufactured more easily and cost-effectively. The invention also comprises a method of manufacturing such a device and a method for inputting the movement of an object (M) therewith.
    • 19. 发明专利
    • AT407372T
    • 2008-09-15
    • AT06727980
    • 2006-04-20
    • KONINKL PHILIPS ELECTRONICS NV
    • HENDRIKS BERNARDUS H WWEEKAMP JOHANNUS WDOBRUSSKIN CHRISTOPH
    • G02B3/14
    • Optical apparatus for modifying a radiation beam, the apparatus including a variable focus lens (1) comprising a first fluid (A) and a second fluid (B) wherein the fluids are immiscible and are separated from each other by a fluid meniscus (6; 106; 206; 306) which is configurable into a configuration which is arranged to modify a predetermined vergence of an input radiation beam (15; 32; 33) and a focus control system. The optical apparatus is characterised in that the apparatus comprises a first redirector arranged to redirect the radiation beam, after having passed once through the fluid meniscus, back towards the fluid meniscus, and a second redirector arranged to further redirect the radiation beam, after having passed twice through the meniscus, back towards the fluid meniscus, wherein the configuration is arranged to further modify the vergence of the radiation beam following each of the redirections, the further modifications being arranged to provide the variable focus lens with an amplified focal power.