CN108241830A - Biometric feature recognition device - Google Patents
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- G—PHYSICS
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- G06V—IMAGE OR VIDEO RECOGNITION OR UNDERSTANDING
- G06V40/00—Recognition of biometric, human-related or animal-related patterns in image or video data
- G06V40/10—Human or animal bodies, e.g. vehicle occupants or pedestrians; Body parts, e.g. hands
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Abstract
Description
技术领域technical field
本发明涉及一种生物特征辨识装置。The invention relates to a biometric identification device.
背景技术Background technique
生物特征辨识的种类包括脸部、声音、虹膜、视网膜、静脉、指纹和掌纹辨识等。由于每个人的指纹都是独一无二的,且指纹不易随着年龄或身体健康状况而变化,因此指纹辨识装置已成为目前最普及的一种生物特征辨识装置。依照感测方式的不同,指纹辨识装置可分为光学式与电容式。电容式指纹辨识装置组装于电子产品(例如:手机、平板计算机)时,电容式指纹辨识装置上方多设有保护组件(cover lens)。一般而言,需额外加工(例如钻孔或薄化)保护组件,以使电容式指纹辨识装置能够感测到手指触碰所造成的容值或电场变化。The types of biometric identification include face, voice, iris, retina, vein, fingerprint and palmprint recognition, etc. Since each person's fingerprint is unique, and the fingerprint is not easy to change with age or health status, the fingerprint identification device has become the most popular biometric identification device at present. According to different sensing methods, fingerprint recognition devices can be classified into optical type and capacitive type. When the capacitive fingerprint recognition device is assembled in an electronic product (such as a mobile phone, a tablet computer), a protective component (cover lens) is often provided above the capacitive fingerprint recognition device. Generally speaking, additional processing (such as drilling or thinning) is required for the protection component, so that the capacitive fingerprint recognition device can sense the change of capacitance or electric field caused by finger touch.
相较于电容式指纹辨识装置,光学式指纹辨识装置撷取容易穿透保护组件的光进行指纹辨识,而可以不用额外加工保护组件,因此在与电子产品的结合上较为便利。Compared with the capacitive fingerprint recognition device, the optical fingerprint recognition device captures the light that easily penetrates the protective component for fingerprint recognition, and does not need additional processing of the protective component, so it is more convenient to combine with electronic products.
光学式指纹辨识装置通常包括光源、影像撷取组件及透光组件。光源用以发出光束,以照射按压在透光组件上的手指。手指的指纹是由多条不规则的凸纹与凹纹所组成。被凸纹与凹纹反射的光束会在影像撷取组件的接收面上形成为明暗交错的指纹影像。影像撷取组件可将指纹影像转换为对应的影像信息,并将影像信息输入至处理单元。处理单元可利用算法计算对应于指纹的影像信息,以进行用户的身份辨识。然而,在上述的取像过程中,被指纹反射的光束易散乱地传递至影像撷取组件,而造成取像质量不佳,影响辨识结果。An optical fingerprint recognition device generally includes a light source, an image capture component and a light-transmitting component. The light source is used to emit light beams to irradiate fingers pressed on the light-transmitting component. The fingerprint of the finger is composed of many irregular convex lines and concave lines. The light beams reflected by the convex and concave grooves will form a bright and dark fingerprint image on the receiving surface of the image capturing component. The image capture component can convert the fingerprint image into corresponding image information, and input the image information to the processing unit. The processing unit can use an algorithm to calculate the image information corresponding to the fingerprint to identify the user. However, in the above-mentioned image capturing process, the light beam reflected by the fingerprint is likely to be scattered and transmitted to the image capturing component, resulting in poor image capturing quality and affecting the identification result.
发明内容Contents of the invention
本发明提供一种生物特征辨识装置。The invention provides a biometric identification device.
根据本发明的实施例,生物特征辨识装置包括光源、导光组件、影像撷取组件以及第一准直器。光源适于提供光束。导光组件位于光束的传递路径上。影像撷取组件位于导光组件下方且具有多个像素区。第一准直器位于导光组件与影像撷取组件之间,其中第一准直器包括透光组件以及吸光层。透光组件具有第一表面以及位于第一表面与影像撷取组件之间的第二表面。吸光层配置在第一表面以及第二表面上且具有暴露出第一表面的多个第一开口以及暴露出第二表面的多个第二开口,其中第一开口与第二开口重叠于像素区,且第一开口与第二开口的孔径相同。According to an embodiment of the present invention, the biometric identification device includes a light source, a light guiding component, an image capturing component, and a first collimator. The light source is adapted to provide a light beam. The light guide component is located on the transmission path of the light beam. The image capture component is located under the light guide component and has a plurality of pixel areas. The first collimator is located between the light guide component and the image capture component, wherein the first collimator includes a light-transmitting component and a light-absorbing layer. The light-transmitting component has a first surface and a second surface located between the first surface and the image capturing component. The light absorbing layer is disposed on the first surface and the second surface and has a plurality of first openings exposing the first surface and a plurality of second openings exposing the second surface, wherein the first openings and the second openings overlap the pixel area , and the diameter of the first opening is the same as that of the second opening.
在根据本发明的实施例的生物特征辨识装置中,导光组件具有出光部以及连接于出光部的入光部。光源与影像撷取组件共同位于出光部下方。入光部位于光源与出光部之间。In the biometric identification device according to the embodiment of the present invention, the light guide assembly has a light exit portion and a light entrance portion connected to the light exit portion. The light source and the image capture component are both located under the light exit part. The light incident part is located between the light source and the light exit part.
在根据本发明的实施例的生物特征辨识装置中,光源位于导光组件的侧面。In the biometric identification device according to the embodiment of the present invention, the light source is located at the side of the light guide component.
在根据本发明的实施例的生物特征辨识装置中,导光组件面向第一准直器的表面形成有多个微结构。微结构凸出或凹入于表面。In the biometric identification device according to the embodiment of the present invention, a plurality of microstructures are formed on the surface of the light guide component facing the first collimator. Microstructures protrude or indent on the surface.
在根据本发明的实施例的生物特征辨识装置中,透光组件的折射率落在1.3至1.7的范围内。In the biometric identification device according to the embodiment of the present invention, the refractive index of the light-transmitting component falls within the range of 1.3 to 1.7.
在根据本发明的实施例的生物特征辨识装置中,各第一开口的孔径与透光组件的高度比落在2至20的范围内。In the biometric identification device according to an embodiment of the present invention, the ratio of the aperture of each first opening to the height of the light-transmitting component falls within a range of 2-20.
在根据本发明的实施例的生物特征辨识装置中,透光组件还具有连接第一表面与第二表面的侧壁面,且吸光层还配置在侧壁面上。In the biometric identification device according to an embodiment of the present invention, the light-transmitting component further has a side wall connecting the first surface and the second surface, and the light-absorbing layer is further disposed on the side wall.
在根据本发明的实施例的生物特征辨识装置中,生物特征辨识装置还包括盖板,其中导光组件位于盖板与第一准直器之间。In the biometric identification device according to the embodiment of the present invention, the biometric identification device further includes a cover plate, wherein the light guide assembly is located between the cover plate and the first collimator.
在根据本发明的实施例的生物特征辨识装置中,生物特征辨识装置还包括第二准直器。第二准直器位于导光组件与第一准直器之间。In the biometric identification device according to the embodiment of the present invention, the biometric identification device further includes a second collimator. The second collimator is located between the light guide component and the first collimator.
在根据本发明的实施例的生物特征辨识装置中,第二准直器包括多个棱镜,且棱镜的顶角分别指向导光组件。In the biometric identification device according to the embodiment of the present invention, the second collimator includes a plurality of prisms, and the apex angles of the prisms respectively point to the light guide component.
基于上述,在本发明的实施例的生物特征辨识装置中,通过调变第一开口与第二开口的孔径来吸收经待辨识物作用且通过导光组件的大角度光束,以将传递至影像撷取组件的光束准直化,使影像撷取组件的取像质量提升。因此,生物特征辨识装置可具有良好的辨识能力。Based on the above, in the biometric identification device according to the embodiment of the present invention, the large-angle light beams acting on the object to be identified and passing through the light guide assembly are absorbed by adjusting the apertures of the first opening and the second opening, so as to transfer to the image The collimation of the light beam of the capturing component improves the image capturing quality of the image capturing component. Therefore, the biometric identification device can have good identification ability.
附图说明Description of drawings
包含附图以便进一步理解本发明,且附图并入本说明书中并构成本说明书的一部分。附图说明本发明的实施例,并与描述一起用于解释本发明的原理。The accompanying drawings are included to provide a further understanding of the invention, and are incorporated in and constitute a part of this specification. The drawings illustrate embodiments of the invention and, together with the description, serve to explain principles of the invention.
图1为本发明一实施例的生物特征辨识装置的剖面示意图;FIG. 1 is a schematic cross-sectional view of a biometric identification device according to an embodiment of the present invention;
图2为图1中导光组件的一种放大图;Fig. 2 is an enlarged view of the light guide assembly in Fig. 1;
图3为图1中第一准直器的一种示意图;Fig. 3 is a kind of schematic diagram of the first collimator in Fig. 1;
图4为图1中第一准直器、影像撷取组件以及电路板的一种剖面示意图;Fig. 4 is a schematic cross-sectional view of the first collimator, the image capture component and the circuit board in Fig. 1;
图5为图1中导光组件以及第二准直器的一种放大图;Fig. 5 is an enlarged view of the light guide assembly and the second collimator in Fig. 1;
图6为本发明另一实施例的生物特征辨识装置的剖面示意图。FIG. 6 is a schematic cross-sectional view of a biometric identification device according to another embodiment of the present invention.
附图标号说明Explanation of reference numbers
10:待辨识物;10: object to be identified;
100、100A:生物特征辨识装置;100, 100A: biometric identification device;
110:光源;110: light source;
112:发光组件;112: light-emitting component;
120、120A:导光组件;120, 120A: light guide assembly;
122:出光部;122: light emitting part;
124:入光部;124: light incident part;
130:影像撷取组件;130: image capture component;
132:电荷耦合组件;132: charge coupled component;
140:第一准直器;140: a first collimator;
142:透光组件;142: light-transmitting component;
144:吸光层;144: light absorbing layer;
150:电路板;150: circuit board;
160:盖板;160: cover plate;
170:第二准直器;170: a second collimator;
172:棱镜;172: prism;
B、B’、B1’、B2’:光束;B, B', B1', B2': Beam;
BA:底角;BA: bottom angle;
C:凹陷;C: concave;
H:高度;H: height;
M:微结构;M: microstructure;
O1:第一开口;O1: first opening;
O2:第二开口;O2: second opening;
PR:像素区;PR: pixel area;
S、S’:表面;S, S': surface;
S1:第一反射面;S1: the first reflective surface;
S2:第二反射面;S2: second reflective surface;
S1421:第一表面;S1421: the first surface;
S1422:第二表面;S1422: the second surface;
S1423:侧壁面;S1423: side wall surface;
TA:顶角;TA: top angle;
WO1、WO2:孔径。WO1, WO2: aperture.
具体实施方式Detailed ways
现将详细地参考本发明的示范性实施例,示范性实施例的实例说明于附图中。只要有可能,相同组件符号在附图和描述中用来表示相同或相似部分。Reference will now be made in detail to the exemplary embodiments of the present invention, examples of which are illustrated in the accompanying drawings. Wherever possible, the same reference numbers will be used in the drawings and description to refer to the same or like parts.
图1为本发明一实施例的生物特征辨识装置的剖面示意图。请参照图1,生物特征辨识装置100例如为指纹辨识装置,用以辨识待辨识物10的指纹,但不以此为限。在另一实施例中,生物特征辨识装置100也可用以辨识静脉、掌纹或是指纹、静脉以及掌纹的其中至少两个的组合。FIG. 1 is a schematic cross-sectional view of a biometric identification device according to an embodiment of the present invention. Referring to FIG. 1 , the biometric identification device 100 is, for example, a fingerprint identification device for identifying the fingerprint of the object 10 to be identified, but not limited thereto. In another embodiment, the biometric identification device 100 can also be used to identify veins, palm prints, or a combination of at least two of fingerprints, veins, and palm prints.
生物特征辨识装置100包括光源110、导光组件120、影像撷取组件130以及第一准直器140。The biometric identification device 100 includes a light source 110 , a light guide component 120 , an image capture component 130 and a first collimator 140 .
光源110适于提供光束B。光源110可以是非可见光光源或可见光光源。也就是说,光束B可以是不可见光(例如:红外光)或可见光(例如:红光、蓝光、绿光或其组合)。或者,光源110可以是非可见光光源与可见光光源的组合。举例而言,光源110可包括多个发光组件112。发光组件112可为发光二极管或其他适当种类的发光组件。图1示意地显示出两个发光组件112,且两个发光组件112位于影像撷取组件130的相对侧。然而,发光组件112的数量以及配置方式可依需求改变,而不以此为限。The light source 110 is adapted to provide a beam B of light. The light source 110 may be an invisible light source or a visible light source. That is to say, the light beam B can be invisible light (for example: infrared light) or visible light (for example: red light, blue light, green light or a combination thereof). Alternatively, the light source 110 may be a combination of an invisible light source and a visible light source. For example, the light source 110 may include a plurality of light emitting components 112 . The light-emitting component 112 can be a light-emitting diode or other suitable types of light-emitting components. FIG. 1 schematically shows two light emitting components 112 , and the two light emitting components 112 are located on opposite sides of the image capturing component 130 . However, the number and arrangement of the light emitting components 112 can be changed according to requirements, and are not limited thereto.
导光组件120位于光束B的传递路径上,其适于将光源110提供的光束B导向待辨识物10。举例而言,导光组件110的材质可为玻璃、聚碳酸酯(PC)、聚甲基丙烯酸甲酯(PMMA)或其他适当材料。在本实施例中,光源110与影像撷取组件130位于导光组件120的同一侧。生物特征辨识装置100进一步包括电路板150。光源110配置在电路板150上且与电路板150电连接。导光组件120具有出光部122以及连接于出光部122的至少一入光部124。光源110与影像撷取组件130共同位于出光部122下方,且光源110位于影像撷取组件130旁。入光部124位于光源110与出光部122之间。详细而言,入光部124可固定在电路板150上,且入光部124具有凹陷C。凹陷C与电路板150围出容纳光源110的空间。在另一实施例中,入光部124与电路板150的其中至少一个可具有凹陷(未示出),以容纳光源110。在又一实施例中,入光部124与电路板150可藉由固定机构(未示出)或黏着层(未示出,例如:光学胶)固定在一起。在再一实施例中,入光部124可藉由黏着层(未示出,例如:光学胶)而固定在光源110上,且入光部124可不与电路板150接触。图1示意地显示出两个入光部124,且两个入光部124位在出光部122的相对侧。然而,入光部124的数量以及配置方式可依需求改变,而不以此为限。The light guide assembly 120 is located on the transmission path of the light beam B, and is suitable for guiding the light beam B provided by the light source 110 to the object 10 to be identified. For example, the material of the light guide component 110 can be glass, polycarbonate (PC), polymethyl methacrylate (PMMA) or other suitable materials. In this embodiment, the light source 110 and the image capture component 130 are located on the same side of the light guide component 120 . The biometric identification device 100 further includes a circuit board 150 . The light source 110 is disposed on the circuit board 150 and electrically connected to the circuit board 150 . The light guide assembly 120 has a light exit portion 122 and at least one light incident portion 124 connected to the light exit portion 122 . The light source 110 and the image capture component 130 are both located under the light exit portion 122 , and the light source 110 is located beside the image capture component 130 . The light incident portion 124 is located between the light source 110 and the light exit portion 122 . In detail, the light incident portion 124 can be fixed on the circuit board 150 , and the light incident portion 124 has a depression C. As shown in FIG. The recess C and the circuit board 150 enclose a space for accommodating the light source 110 . In another embodiment, at least one of the light incident portion 124 and the circuit board 150 may have a recess (not shown) to accommodate the light source 110 . In yet another embodiment, the light incident portion 124 and the circuit board 150 can be fixed together by a fixing mechanism (not shown) or an adhesive layer (not shown, such as optical glue). In yet another embodiment, the light incident portion 124 may be fixed on the light source 110 by an adhesive layer (not shown, such as optical glue), and the light incident portion 124 may not be in contact with the circuit board 150 . FIG. 1 schematically shows two light incident portions 124 , and the two light incident portions 124 are located on opposite sides of the light exit portion 122 . However, the number and arrangement of the light incident portions 124 can be changed according to requirements, and are not limited thereto.
图2为图1中导光组件的一种放大图。请参照图1及图2,光源110射出的光束B自入光部124进入导光组件120,且光束B可经由入光部124传递至出光部122。导光组件120面向第一准直器140的表面S可选择性地形成有多个微结构M(图1未示出,请参照图2)。微结构M适于改变光束B的传递方向,使得被微结构M反射的光束B垂直或接近垂地直射出出光部122。如图2所示,微结构M可凸出于表面S且可具有第一反射面S1以及第二反射面S2。第一反射面S1与第二反射面S2彼此相连,其中第一反射面S1与第二反射面S2相对于表面S倾斜,且第一反射面S1与第二反射面S2的倾斜方向相反。在一实施例中,微结构M、出光部122以及入光部124可一体成型,但不以此为限。在另一实施例中,微结构M、出光部122以及入光部124可分别制作,再藉由连接机构或黏着层(例如:光学胶)固定在一起。或者,微结构M也可凹入于表面S。具体地,微结构M可以是形成在表面S上的凹陷。另外,微结构M的数量及其分布可依据不同的需求改变,而不限于图2所显示的数量及分布。FIG. 2 is an enlarged view of the light guide assembly in FIG. 1 . Referring to FIG. 1 and FIG. 2 , the light beam B emitted from the light source 110 enters the light guide assembly 120 from the light incident portion 124 , and the light beam B can be transmitted to the light output portion 122 through the light incident portion 124 . The surface S of the light guide assembly 120 facing the first collimator 140 may optionally be formed with a plurality of microstructures M (not shown in FIG. 1 , please refer to FIG. 2 ). The microstructure M is adapted to change the transmission direction of the light beam B, so that the light beam B reflected by the microstructure M exits the light emitting portion 122 vertically or nearly vertically. As shown in FIG. 2 , the microstructure M may protrude from the surface S and may have a first reflective surface S1 and a second reflective surface S2 . The first reflective surface S1 and the second reflective surface S2 are connected to each other, wherein the first reflective surface S1 and the second reflective surface S2 are inclined relative to the surface S, and the inclination directions of the first reflective surface S1 and the second reflective surface S2 are opposite. In one embodiment, the microstructure M, the light exit portion 122 and the light entrance portion 124 can be integrally formed, but not limited thereto. In another embodiment, the microstructure M, the light exit portion 122 and the light entrance portion 124 can be manufactured separately, and then fixed together by a connection mechanism or an adhesive layer (eg, optical glue). Alternatively, the microstructure M can also be recessed on the surface S. As shown in FIG. Specifically, the microstructure M may be a depression formed on the surface S. As shown in FIG. In addition, the number and distribution of the microstructures M can be changed according to different requirements, and are not limited to the number and distribution shown in FIG. 2 .
出光部122输出光束B的表面S’与形成有微结构M的表面S相对。在一实施例中,表面S’可以是供待辨识物10按压的按压面。在表面S’为按压面的架构下,如图2所示,来自光源110的光束B依序通过入光部124以及出光部122,并在表面S’发生全内反射(TotalInternal Reflection,TIR),接着依序被第二反射面S2以及第一反射面S1反射,并垂直或接近垂直地射出表面S’。The surface S' of the light emitting part 122 outputting the light beam B is opposite to the surface S on which the microstructure M is formed. In one embodiment, the surface S' may be a pressing surface for pressing the object 10 to be identified. Under the framework of the surface S' being the pressing surface, as shown in FIG. 2, the light beam B from the light source 110 passes through the light incident portion 124 and the light exit portion 122 in sequence, and undergoes total internal reflection (Total Internal Reflection, TIR) on the surface S'. , and then reflected by the second reflective surface S2 and the first reflective surface S1 in sequence, and exit the surface S′ vertically or nearly vertically.
或者,如图1所示,生物特征辨识装置100可进一步包括盖板160以供待辨识物10按压。盖板160位于导光组件120上方,且导光组件120位于盖板160与第一准直器140之间。盖板160可以是所欲组装的电子产品(例如:触控面板或触控显示面板)的保护组件(coverlens),但不以此为限。在一实施例中,盖板160与导光组件120可藉由连接机构或黏着层(例如:光学胶)而固定在一起,但不以此为限。以黏着层固定盖板160与导光组件120的情况下,黏着层、盖板160与导光组件120的折射率可相同或相近,以减少接口反射,进而提升生物特征辨识装置100的光利用效率和/或取像质量。然而,在其他实施例中,黏着层、盖板160与导光组件120的折射率也可相异。在设置盖板160的架构下,来自光源110的光束B依序通过入光部124、出光部122以及盖板160,并在盖板160供待辨识物10按压的表面发生全内反射。经待辨识物10作用(例如:漫射)的光束B’依序通过盖板160以及出光部122并传递至表面S。传递至表面S的光束B’的一部分会被表面S反射,而再次朝盖板160供待辨识物10按压的表面传递。另一方面,传递至表面S的光束B’的另一部分会自表面S射出导光组件120。Alternatively, as shown in FIG. 1 , the biometric identification device 100 may further include a cover plate 160 for pressing the object 10 to be identified. The cover plate 160 is located above the light guide assembly 120 , and the light guide assembly 120 is located between the cover plate 160 and the first collimator 140 . The cover plate 160 may be a cover lens of an electronic product to be assembled (such as a touch panel or a touch display panel), but is not limited thereto. In one embodiment, the cover plate 160 and the light guide component 120 can be fixed together by a connection mechanism or an adhesive layer (eg, optical glue), but not limited thereto. In the case of fixing the cover plate 160 and the light guide component 120 with an adhesive layer, the refractive index of the adhesive layer, the cover plate 160 and the light guide component 120 can be the same or similar to reduce interface reflection, thereby improving the light utilization of the biometric identification device 100 efficiency and/or image quality. However, in other embodiments, the refractive indices of the adhesive layer, the cover plate 160 and the light guide component 120 may also be different. Under the structure of the cover plate 160 , the light beam B from the light source 110 sequentially passes through the light incident portion 124 , the light output portion 122 and the cover plate 160 , and undergoes total internal reflection on the surface of the cover plate 160 on which the object 10 to be identified is pressed. The light beam B' that has been acted on (for example: diffused) by the object to be identified 10 passes through the cover plate 160 and the light emitting portion 122 in sequence and is delivered to the surface S. A part of the light beam B' transmitted to the surface S will be reflected by the surface S, and then transmitted toward the surface of the cover plate 160 for pressing the object 10 to be identified. On the other hand, another part of the light beam B' delivered to the surface S exits the light guide assembly 120 from the surface S.
影像撷取组件130位于导光组件120下方且具有例如呈数组排列的多个像素(pixel)区PR(显示于图4),以接收经待辨识物10作用的光束B’,进而取得待辨识物10的影像。在本实施例中,影像撷取组件130例如包括多个电荷耦合组件(Charge-CoupledDevice,CCD)132(显示于图4)。电荷耦合组件132配置于电路板150上并与电路板150电连接。电荷耦合组件132的所在区域为影像撷取组件130的像素区PR。在另一实施例中,影像撷取组件130可包括多个互补金属氧化物半导体(Complementary Metal OxideSemiconductor,CMOS),且互补金属氧化物半导体的所在区域为影像撷取组件130的像素区PR。The image capture component 130 is located below the light guide component 120 and has, for example, a plurality of pixel (pixel) regions PR (shown in FIG. 4 ) arranged in an array to receive the light beam B' acted on by the object to be identified 10, and then obtain the target to be identified. Image of object 10. In this embodiment, the image capturing component 130 includes, for example, a plurality of charge-coupled devices (Charge-Coupled Device, CCD) 132 (shown in FIG. 4 ). The CCD 132 is disposed on the circuit board 150 and electrically connected to the circuit board 150 . The region where the charge-coupled device 132 is located is the pixel region PR of the image capture device 130 . In another embodiment, the image capture device 130 may include a plurality of complementary metal oxide semiconductors (Complementary Metal Oxide Semiconductor, CMOS), and the region where the CMOS is located is the pixel region PR of the image capture device 130 .
第一准直器140位于导光组件120与影像撷取组件130之间,且第一准直器140位于待辨识物10作用后的光束B’的传递路径上。举例而言,第一准直器140可配置在影像撷取组件130上,且第一准直器140与影像撷取组件130可藉由连接机构或黏着层(例如:光学胶)而固定在一起,但不以此为限。The first collimator 140 is located between the light guide component 120 and the image capture component 130, and the first collimator 140 is located on the transmission path of the light beam B' after the object 10 to be identified 10 is acted upon. For example, the first collimator 140 can be disposed on the image capture component 130, and the first collimator 140 and the image capture component 130 can be fixed on the first collimator 140 and the image capture component 130 through a connection mechanism or an adhesive layer (eg, optical glue). together, but not limited to.
图3为图1中第一准直器的一种示意图,显示出第一准直器的正面及背面。图4为图1中第一准直器、影像撷取组件以及电路板的一种剖面示意图。请参照图1、图3及图4,第一准直器140包括透光组件142以及吸光层144。透光组件142具有第一表面S1421、位于第一表面S1421与影像撷取组件130之间的第二表面S1422以及连接第一表面S1421与第二表面S1422的侧壁面S1423。吸光层144配置在第一表面S1421以及第二表面S1422上且具有暴露出第一表面S1421的多个第一开口O1以及暴露出第二表面S1422的多个第二开口O2,其中第一开口O1与第二开口O2重叠于区像素PR,且第一开口O1的孔径WO1与第二开口O2的孔径WO2相同。进一步而言,第一开口O1与第二开口O2具有相同或实质上相同的形状以及尺寸。所谓实质上相同的形状以及尺寸是考虑到制作工艺所造成的误差。此外,第一开口O1与第二开口O2对齐于像素区PR,以使依序通过第一开口O1与第二开口O2的光束能够传递至影像撷取组件130(如图4的光束B2’所显示)。在本实施例中,像素区PR的尺寸可略大于第一开口O1的孔径WO1与第二开口O2的孔径WO2,但不以此为限。此外,吸光层144可进一步配置在透光组件142的侧壁面S1423上,以避免传递于透光组件142中的光束自侧壁面S1423射出。然而,在另一实施例中,吸光层144可以不配置在透光组件142的侧壁面S1423上。FIG. 3 is a schematic diagram of the first collimator in FIG. 1 , showing the front and back of the first collimator. FIG. 4 is a schematic cross-sectional view of a first collimator, an image capturing component and a circuit board in FIG. 1 . Referring to FIG. 1 , FIG. 3 and FIG. 4 , the first collimator 140 includes a light-transmitting component 142 and a light-absorbing layer 144 . The transparent component 142 has a first surface S1421, a second surface S1422 located between the first surface S1421 and the image capture component 130, and a sidewall surface S1423 connecting the first surface S1421 and the second surface S1422. The light absorbing layer 144 is disposed on the first surface S1421 and the second surface S1422 and has a plurality of first openings O1 exposing the first surface S1421 and a plurality of second openings O2 exposing the second surface S1422, wherein the first openings O1 It overlaps with the second opening O2 in the area pixel PR, and the aperture WO1 of the first opening O1 is the same as the aperture WO2 of the second opening O2. Further, the first opening O1 and the second opening O2 have the same or substantially the same shape and size. The so-called substantially the same shape and size take into account the error caused by the manufacturing process. In addition, the first opening O1 and the second opening O2 are aligned in the pixel region PR, so that the light beams sequentially passing through the first opening O1 and the second opening O2 can be delivered to the image capture device 130 (as indicated by the light beam B2' in FIG. 4 . show). In this embodiment, the size of the pixel region PR may be slightly larger than the aperture WO1 of the first opening O1 and the aperture WO2 of the second opening O2 , but it is not limited thereto. In addition, the light-absorbing layer 144 can be further disposed on the sidewall surface S1423 of the light-transmitting component 142 to prevent the light beam transmitted in the light-transmitting component 142 from being emitted from the sidewall surface S1423. However, in another embodiment, the light absorbing layer 144 may not be disposed on the side wall surface S1423 of the light transmitting component 142 .
当导光组件120与第一准直器140之间的光传递介质(例如:空气或光学胶)的折射率不同于透光组件142的折射率时,入射透光组件142的光束B’(包括大角度入射透光组件142的光束B1’以及小角度入射透光组件142的光束B2’)会在透光组件142的第一表面S1421经由折射而进入透光组件142。因此,透光组件142的设置有助于收敛光束B’进入第一准直器140的角度,进而让更多的光束B’能够传递至影像撷取组件130。When the refractive index of the light transmission medium (for example: air or optical glue) between the light guiding component 120 and the first collimator 140 is different from the refractive index of the light transmitting component 142, the light beam B′ ( The light beam B1 ′ incident on the light-transmitting component 142 at a large angle and the light beam B2 ′ incident on the light-transmitting component 142 at a small angle will enter the light-transmitting component 142 through refraction on the first surface S1421 of the light-transmitting component 142 . Therefore, the arrangement of the light-transmitting component 142 helps to narrow the angle at which the light beam B' enters the first collimator 140, so that more light beams B' can be transmitted to the image capturing component 130.
透光组件142的材质可采用玻璃、聚碳酸酯(PC)、聚甲基丙烯酸甲酯(PMMA)或其他适当材料。吸光层144的材质例如可采用含有吸光材料(例如:碳)的硅胶系或压克力系材料。如此一来,即使大角度入射透光组件142的光束B1’以及小角度入射透光组件142的光束B2’皆通过第一开口O1而进入透光组件142,仍可利用位于第二表面S1422上的吸光层144吸收大角度入射透光组件142的光束B1’,而仅让小角度入射透光组件142的光束B2’通过并传递至影像撷取组件130。The light-transmitting component 142 can be made of glass, polycarbonate (PC), polymethyl methacrylate (PMMA) or other suitable materials. The material of the light-absorbing layer 144 can be, for example, silicon-based or acrylic-based materials containing light-absorbing materials (eg, carbon). In this way, even if the light beam B1' incident on the light-transmitting component 142 at a large angle and the light beam B2' incident on the light-transmitting component 142 at a small angle enter the light-transmitting component 142 through the first opening O1, the second surface S1422 can still be used. The light-absorbing layer 144 absorbs the light beam B1 ′ incident on the light-transmitting component 142 at a large angle, and only allows the light beam B2 ′ incident on the light-transmitting component 142 at a small angle to pass through and transmit to the image capturing component 130 .
进入第一准直器140的光束是否被位于第二表面S1422上的吸光层144吸收可取决于第一开口O1的孔径WO1以及第二开口O2的孔径WO2、透光组件142的高度H以及光束B’在透光组件142的第一表面S1421的折射角(由光束B’的入射角以及透光组件142的折射率决定)等。在透光组件142的高度H为定值的情况下,第一开口O1的孔径WO1以及第二开口O2的孔径WO2越大,影像撷取组件130接收到的光束B’的角度范围越大。在第一开口O1的孔径WO1以及第二开口O2的孔径WO2为定值的情况下,透光组件142的高度H越大,影像撷取组件130接收到的光束B’的角度范围越小。在第一开口O1的孔径WO1、第二开口O2的孔径WO2以及透光组件142的高度H为定值的情况下,光束B’的折射角越大(也就是入射角越大),越有可能被吸光层144吸收。在本实施例中,透光组件142的折射率大于1,且例如落在1.3至1.7的范围内。此外,各第一开口O1的孔径WO1(也是第二开口O2的孔径WO2)与透光组件142的高度H比落在2至20的范围内。然而,透光组件142的折射率以及各第一开口O1的孔径WO1与透光组件142的高度H比可依据不同的设计需求(例如:影像撷取组件130的节距(pitch))改变,而不限于上述。Whether the light beam entering the first collimator 140 is absorbed by the light absorbing layer 144 on the second surface S1422 may depend on the aperture WO1 of the first opening O1 and the aperture WO2 of the second opening O2, the height H of the light-transmitting component 142 and the light beam The refraction angle of B′ on the first surface S1421 of the light-transmitting component 142 (determined by the incident angle of the light beam B′ and the refractive index of the light-transmitting component 142 ) and the like. When the height H of the light-transmitting component 142 is constant, the larger the aperture WO1 of the first opening O1 and the aperture WO2 of the second opening O2 are, the larger the angle range of the beam B' received by the image capturing component 130 is. When the aperture WO1 of the first opening O1 and the aperture WO2 of the second opening O2 are constant, the larger the height H of the light-transmitting element 142 is, the smaller the angle range of the light beam B' received by the image capturing element 130 is. When the aperture WO1 of the first opening O1, the aperture WO2 of the second opening O2, and the height H of the light-transmitting component 142 are constant values, the larger the refraction angle of the beam B' (that is, the larger the incident angle), the more May be absorbed by light absorbing layer 144. In this embodiment, the refractive index of the light-transmitting component 142 is greater than 1, and falls within a range of 1.3 to 1.7, for example. In addition, the ratio of the diameter WO1 of each first opening O1 (which is also the diameter WO2 of the second opening O2 ) to the height H of the light-transmitting component 142 falls within a range of 2-20. However, the refractive index of the light-transmitting component 142 and the ratio of the aperture WO1 of each first opening O1 to the height H of the light-transmitting component 142 can be changed according to different design requirements (for example: the pitch of the image capturing component 130 (pitch)), Not limited to the above.
利用吸光层144吸收经待辨识物10作用且通过导光组件120的大角度光束(例如:光束B1’),可以使仅特定角度的光束(小角度入射的光束,例如:光束B2’)传递至影像撷取组件130。经由适当的调变第一开口O1的孔径WO1以及第二开口O2的孔径WO2,可以使通过第一准直器140的光束B’能够以0度或接近0度的角度入射影像撷取组件130。换句话说,第一准直器140有助于将传递至影像撷取组件130的光束准直化。如此,不但有助于滤除杂散光,还有助于避免从不同第二开口O2输出的光束B’相互干扰的问题,使影像撷取组件130的取像质量提升。因此,生物特征辨识装置100可具有良好的辨识能力。图3示意性地显示第一开口O1以及第二开口O2的形状为圆形,但不以此为限。在其他实施例中,第一开口O1以及第二开口O2的形状也可以是三角形、四边形、五边形或其他多边形。The light-absorbing layer 144 is used to absorb the large-angle light beam (for example: light beam B1') that is acted on by the object to be identified 10 and passes through the light guide assembly 120, so that only the light beam with a specific angle (a small-angle incident light beam, such as: light beam B2') can be transmitted to the image capturing component 130 . By appropriately adjusting the aperture WO1 of the first opening O1 and the aperture WO2 of the second opening O2, the light beam B' passing through the first collimator 140 can be incident on the image capture unit 130 at an angle of 0 degrees or close to 0 degrees. . In other words, the first collimator 140 helps to collimate the light beam transmitted to the image capturing component 130 . In this way, it not only helps to filter stray light, but also helps to avoid the problem of mutual interference of beams B' output from different second openings O2, so as to improve the image quality of the image capturing component 130. Therefore, the biometric identification device 100 can have good identification capability. FIG. 3 schematically shows that the shapes of the first opening O1 and the second opening O2 are circular, but not limited thereto. In other embodiments, the shapes of the first opening O1 and the second opening O2 may also be triangles, quadrilaterals, pentagons or other polygons.
依据不同需求,生物特征辨识装置100还可包括其他组件。举例而言,生物特征辨识装置100还可包括第二准直器170。第二准直器170位于导光组件120与第一准直器140之间,且第二准直器170位于待辨识物10作用后的光束B’的传递路径上。举例而言,第二准直器170可配置在表面S上,且导光组件120与第二准直器170可藉由连接机构或黏着层(例如:光学胶)而固定在一起,但不以此为限。According to different requirements, the biometric identification device 100 may also include other components. For example, the biometric identification device 100 may further include a second collimator 170 . The second collimator 170 is located between the light guide assembly 120 and the first collimator 140, and the second collimator 170 is located on the transmission path of the beam B' after the object 10 to be identified is acted upon. For example, the second collimator 170 can be disposed on the surface S, and the light guide component 120 and the second collimator 170 can be fixed together by a connection mechanism or an adhesive layer (such as: optical glue), but not This is the limit.
第二准直器170适于在光束B’通过第一准直器140之前,预先将光束B’准直化,以收敛光束B’的发散角。如此,可增加光束B’后续通过第一准直器140的机率。图5为图1中导光组件以及第二准直器的一种放大图。请参照图1及图5,第二准直器170可包括多个棱镜172,且棱镜172的顶角TA分别指向导光组件120。在本实施例中,各棱镜172的两个底角BA的角度相同。然而,棱镜172的顶角TA及底角BA可依据不同的需求改变,而不限于此。The second collimator 170 is suitable for pre-collimating the beam B' before the beam B' passes through the first collimator 140, so as to converge the divergence angle of the beam B'. In this way, the probability of the beam B' subsequently passing through the first collimator 140 can be increased. FIG. 5 is an enlarged view of the light guide assembly and the second collimator in FIG. 1 . Referring to FIG. 1 and FIG. 5 , the second collimator 170 may include a plurality of prisms 172 , and apex angles TA of the prisms 172 are respectively directed to the light guide element 120 . In this embodiment, the two base angles BA of each prism 172 are the same. However, the apex angle TA and the base angle BA of the prism 172 can be changed according to different requirements, and are not limited thereto.
图6为本发明另一实施例的生物特征辨识装置的剖面示意图。图6的生物特征辨识装置100A与图1的生物特征辨识装置100相似,且生物特征辨识装置100A具有与生物特征辨识装置100相似的功效与优点,于此便不再重述。图6的生物特征辨识装置100A与图1的生物特征辨识装置100的差异在于光源110的位置不同。详细而言,在图6的实施例中,光源110位于导光组件120A的侧面。在此架构下,导光组件120A例如为板状,且导光组件120A可以省略图1中导光组件120的入光部124。FIG. 6 is a schematic cross-sectional view of a biometric identification device according to another embodiment of the present invention. The biometric identification device 100A in FIG. 6 is similar to the biometric identification device 100 in FIG. 1 , and the biometric identification device 100A has functions and advantages similar to those of the biometric identification device 100 , which will not be repeated here. The difference between the biometric identification device 100A in FIG. 6 and the biometric identification device 100 in FIG. 1 lies in the location of the light source 110 . In detail, in the embodiment of FIG. 6 , the light source 110 is located at the side of the light guide assembly 120A. Under this framework, the light guide component 120A is, for example, plate-shaped, and the light guide component 120A can omit the light incident portion 124 of the light guide component 120 in FIG. 1 .
综上所述,在本发明的实施例的生物特征辨识装置中,通过调变第一开口与第二开口的孔径来吸收经待辨识物作用且通过导光组件的大角度光束,以将传递至影像撷取组件的光束准直化,使影像撷取组件的取像质量提升。因此,生物特征辨识装置可具有良好的辨识能力。To sum up, in the biometric identification device according to the embodiment of the present invention, the large-angle light beams acting on the object to be identified and passing through the light guide assembly are absorbed by adjusting the apertures of the first opening and the second opening, so as to transmit The collimation of the light beam to the image capture component improves the image quality of the image capture component. Therefore, the biometric identification device can have good identification capability.
最后应说明的是:以上各实施例仅用以说明本发明的技术方案,而非对其限制;尽管参照前述各实施例对本发明进行了详细的说明,本领域的普通技术人员应当理解:其依然可以对前述各实施例所记载的技术方案进行修改,或者对其中部分或者全部技术特征进行等同替换;而这些修改或者替换,并不使相应技术方案的本质脱离本发明各实施例技术方案的范围。Finally, it should be noted that: the above embodiments are only used to illustrate the technical solutions of the present invention, rather than limiting them; although the present invention has been described in detail with reference to the foregoing embodiments, those of ordinary skill in the art should understand that: It is still possible to modify the technical solutions described in the foregoing embodiments, or perform equivalent replacements for some or all of the technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the technical solutions of the various embodiments of the present invention. scope.
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