Flare-Reducing Imaging System And Associated Image Sensor
20170280075 · 2017-09-28
Assignee
Inventors
- Chao-Hung Lin (San Ramon, CA, US)
- Hong Jun Li (San Jose, CA, US)
- Ping-Hsu Chen (San Jose, CA, US)
- Denis Chu (Fremont, CA, US)
Cpc classification
H01L27/14625
ELECTRICITY
International classification
Abstract
An image sensor capable of capturing an image formed by a lens includes a substrate and a bonding wire. The substrate has a pixel array and a bonding pad on a top surface of the substrate between the pixel array and a substrate edge. The bonding wire is electrically connected to the bonding pad and has a region forming a non-zero angle with respect to the substrate top surface. The non-zero angle is in at least one of a lower and an upper angular range for minimizing reflection of incident light on the region from reaching the image sensor. The lower angular range is selected such that the region reflects the incident light away from the pixel array toward a plane including the lens. The upper angular range is selected such that the region reflects the incident light to a clearance between the bonding pad and the pixel array.
Claims
1. A flare-reducing imaging system comprising: an image sensor having a pixel array formed on a top surface of a substrate that includes a bonding pad on the substrate top surface between the pixel array and an edge of the substrate; a lens above the pixel array and having an optical axis orthogonal thereto; and a bonding wire electrically connected to the bonding pad and having a region that forms a non-zero angle with respect to the substrate top surface and extends away from the optical axis, the non-zero angle being in at least one of a lower and an upper angular range for minimizing reflection of incident light on the region from reaching the image sensor, the lower angular range being selected such that the region reflects the incident light away from the pixel array toward a plane including the lens, and the upper angular range being selected such that the region reflects the incident light to a clearance between the bonding pad and the pixel array, the upper angular range having a minimum angle φ.sub.min with respect to the substrate top surface, such that the clearance exceeds h(tan(π−2φ.sub.min+β.sub.−)−cot φ.sub.min), where β.sub.− is the propagation angle, with respect to the optical axis, of a lower marginal ray incident on the region at a height h above the top surface.
2. The flare-reducing imaging system of claim 1, the non-zero angle exceeding five degrees.
3. The flare-reducing imaging system of claim 1, the region being between (a) the bonding pad and (b) a peak-height region of the bonding wire between the image sensor and the lens.
4. The flare-reducing imaging system of claim 1, the lower angular range having an upper limit 1/2β.sub.+, where β.sub.+ is the angle between an upper marginal ray and the optical axis.
5. The flare-reducing imaging system of claim 4, the lens having a focal length f and a diameter D, the upper marginal ray being incident on the bonding wire at a perpendicular distance x.sub.r from the optical axis and at a height h<<f above the top surface, and
6. The flare-reducing imaging system of claim 4, the clearance being less than one hundred micrometers.
7. (canceled)
8. The flare-reducing imaging system of claim 1, the lens having a focal length f and a diameter D, the incident light reflecting off the bonding wire at a perpendicular distance x.sub.r from the optical axis and at a height h<<f above the top surface, and
9. The flare-reducing imaging system of claim 1, the clearance being less than six hundred micrometers.
10. A flare-reducing image sensor capable of capturing an image formed by a lens having an optical axis orthogonal thereto, comprising: a substrate having a pixel array formed thereon, and including a bonding pad on a top surface of the substrate between the pixel array and an edge of the substrate; a bonding wire electrically connected to the bonding pad and having a region forming a non-zero angle with respect to the substrate top surface and extending away from the pixel array, the non-zero angle being in at least one of a lower and an upper angular range for minimizing reflection of incident light on the region from reaching the image sensor, the lower angular range being selected such that the region reflects the incident light away from the pixel array toward a plane including the lens, and the upper angular range being selected such that the region reflects the incident light to a clearance between the bonding pad and the pixel array, the upper angular range having a minimum angle φ.sub.min with respect to the substrate top surface, such that the clearance exceeds h(tan(π−2φ.sub.min+β.sub.−)−cot φ.sub.min), where β.sub.− is the propagation angle, with respect to the optical axis, of a lower marginal ray incident on the region at a height h above the top surface.
11. The flare-reducing image sensor of claim 10, the non-zero angle exceeding five degrees.
12. The flare-reducing image sensor of claim 10, the region being between (a) the bonding pad and (b) a peak-height region of the bonding wire above a plane containing the substrate top surface.
13. The flare-reducing image sensor of claim 10, the lower angular range having an upper limit of 1/2β.sub.+, where β.sub.+ is the angle between an upper marginal ray and an image sensor normal.
14. The flare-reducing image sensor of claim 13, the lens having a focal length f and a diameter D, the upper marginal ray being incident on the bonding wire at a perpendicular distance x.sub.r from the optical axis and at a height h<<f above the top surface, and
15. The flare-reducing image sensor of claim 13, the clearance being less than one hundred micrometers.
16. (canceled)
17. The flare-reducing image sensor of claim 10, the lens having a focal length f and a diameter D, the incident light reflecting off the bonding wire at a perpendicular distance x.sub.r from the optical axis and at a height h<<f above the top surface, and
18. The flare-reducing image sensor of claim 10, the clearance being less than six hundred micrometers.
19. A flare-reducing imaging system comprising: an image sensor having a pixel array formed on a top surface of a substrate that includes a bonding pad on the substrate top surface between the pixel array and an edge of the substrate; a lens above the pixel array and having an optical axis orthogonal thereto; and a bonding wire electrically connected to the bonding pad and having a region that forms a non-zero angle with respect to the substrate top surface and extends away from the optical axis, the non-zero angle being in at least one of a lower and an upper angular range for minimizing reflection of incident light on the region from reaching the image sensor, the lower angular range having an upper limit of 1/2β.sub.+, where β.sub.+ is the angle between an upper marginal ray and the optical axis, such that the region reflects the incident light away from the pixel array toward a plane including the lens, and the upper angular range being selected such that the region reflects the incident light to a clearance between the bonding pad and the pixel array.
Description
BRIEF DESCRIPTION OF THE FIGURES
[0006]
[0007]
[0008]
[0009]
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
DETAILED DESCRIPTION OF THE EMBODIMENTS
[0016]
[0017] Image sensor 210 is electrically connected to a printed circuit board 202 (PCB) via a plurality of bonding wires 230 which are at least partially within image circle 272. Lens 270 has an optical axis 271 that is orthogonal to the plane of a pixel array 212 of image sensor 210. Image sensor 210 and lens 270 may function as image sensor 110 and lens 170 respectively of
[0018] As shown in
[0019] Applicant has discovered that bonding wire flare can be significantly reduced through strategic selection of angle φ.sub.3, as shown hereinbelow.
[0020] Flare-reducing image sensor 410 and pixel array 212 have respective widths 410W and 212W, as shown in
[0021] Lens 470 has a focal length f, diameter D, and an optical axis 471 that is orthogonal to plane 410T. Flare-reducing image sensor 410 and lens 470 may function as image sensor 110 and lens 170 respectively of
[0022] As shown in
Distance x.sub.r may also be a distance from a midpoint of the pixel array 212 and be within a region spanned by distance 430L denoted in
[0023] Chief ray 580 propagates at a chief-ray-angle x with respect to optical axis 471, where
Lower marginal ray 578 and upper marginal ray 582 propagate at angles β.sub.− and β.sub.+ respectively with respect to optical axis 471. Angles β.sub.± satisfy Equation 1, where
and f−h≅f.
[0024] Bonding wire 430 is electrically connected to a bonding pad 414 of flare-reducing image sensor 410 and has a peak height above PCB 202 at a region 430P. Bonding wire 430 includes a region 431 in the vicinity of location 431R that forms an angle φ.sub.u(x.sub.4) with respect to plane 410T. Angle φ.sub.u(x.sub.r) is less than or equal to a maximum angle φ.sub.max=1/2β.sub.+. When angle φ.sub.u(x.sub.r) exceeds φ.sub.max, as illustrated in
[0025] Since β.sub.30(x.sub.r)<X(x.sub.r)<β.sub.−(x.sub.4), requiring φ.sub.u(x.sub.r)<1/2β.sub.+(x.sub.r) also ensures that φ.sub.u(x.sub.r)<1/2X(x.sub.r) and φ.sub.u(x.sub.r<1/2β.sub.−(x.sub.r). Hench, when φ.sub.u(x.sub.r)<1/2β.sub.+(x.sub.r), upper marginal ray 582, chief ray 580 and lower marginal ray 578 are reflected away from pixel array 212. This ensures that all rays transmitted by lens 470 and incident on bonding wire 430 at x.sub.r are reflected away from pixel array 212.
[0026] Short circuiting becomes a risk as angle φ.sub.u(x.sub.r) approaches zero such that region 431 is close to parallel to plane 410T. To avoid this risk, angle φ.sub.u(x.sub.r) has a critical minimum angle, which is for example five degrees, above which short circuiting is a low risk.
[0027]
[0028] In an embodiment, bonding wire 430 includes a plurality of regions, similar to region 431, between bonding pad 414 and region 430P, that form angles with respect to plane 410T between above a critical minimum angle and φ.sub.max. For example,
[0029] In a second example, each region 731(1-3) forms a respective angle φ with plane 410T that satisfies φ.sub.i(x)<1/2β.sub.+(x.sub.i−1). For example, region 731(2) is a linear region forming an angle φ.sub.2(x)<1/2β.sub.+(x.sub.1). Bonding wire 730 is shown with three linear regions for illustrative purposes. Bonding wire 730 may have more than three linear regions, for example, so many that bonding wire 730 is best represented by a continuous curve w(x) with an angle φ.sub.u(x) determined by its slope
that is, φ.sub.u(x)=arctan(w′(x)).
[0030] Bonding wire 730 may include a non-qualifying region that forms an angle with plane 410T that exceeds φ.sub.max. For example, an interface location such as x.sub.1, x.sub.2, and x.sub.3 may have a local slope that exceeds the slope of an adjacent region 731 such that the angle with respect to plane 410T at the interface region exceeds φ.sub.max. As such regions can potentially cause bonding wire flare, the length of these regions should be minimized. In an embodiment, the length of such regions is less than ten percent of the length of bonding wire 730 between positions x.sub.0 and x.sub.3.
[0031]
[0032] Lower marginal ray 578 is incident on bonding wire 830 at a point 830R located a height 830H (herein also referred to as h) above plane 410T. In the horizontal direction, point 830R is a distance h cots from bonding point 414P and a distance Δ.sub.1 from pixel array 212, where Δ.sub.i=−h tan(2φ.sub.d−β.sub.−). Point 830R is distance x.sub.r from optical axis 471, where distance x.sub.r in part determines marginal ray angle ↑.sub.− as shown in Eq. (1).
[0033] As in
such that φ.sub.d=β.sub.−+φ and
Distance Δ.sub.1 is part of a right triangle opposite angle
such that Δ.sub.1h tan(−2φ.sub.d+β.sub.−+π)=h tan(−2φ.sub.3+β.sub.−). The distance
such that the ratio
is expressed in Eq. (2) where and Eq. (1) defines β.sub.−.
[0034] When Δ.sub.4 exceeds clearance 813, reflected ray 878R is incident on pixel array 212 and results in bonding wire flare in images produced by flare-reducing image sensor 410. Hence, restricting Δ.sub.r such that Δ.sub.r is less than clearance 813 prevents such bonding wire flare. In an embodiment, angle φ.sub.d(x.sub.r) exceeds a minimum angle φ.sub.min such that Δ.sub.r (φ.sub.dβ.sub.−) is less than clearance 813. In this embodiment, angle φ.sub.d(x.sub.r) may be also be less than φ.sub.max=1/2β.sub.+(x.sub.r). Clearance 813 may be treated to minimize reflections of light incident thereon, for example, by a surface treatment or additional layer as known in the art.
[0035] In an embodiment, Δ.sub.4 is reduced by minimizing angle
such that lower marginal ray 578 is incident at location 830R at a grazing angle. In such an embodiment, angle φ approaches
such that bonding wire angle φ.sub.d(x.sub.r) exceeds ninety degrees.
[0036]
approaches infinity when reflected ray 878R propagates horizontally, i.e., parallel to plane 410T. This occurs when
In such a case, we denote φ.sub.d as φ.sub.−.sup.∞, where
For upper marginal ray angle β.sub.−=30°, φ.sub.−.sup.∞=60°, as shown in
[0037] Bonding wire 830 may have a height w(x.sub.r) (of which height 830H is one value) above plane 410T and slope w(x.sub.r) such that lower marginal rays incident thereon at respective positions x.sub.r (and corresponding angles β.sub.−(x.sub.r)) are reflected in a direction parallel to plane 410T. That is at one or more that positions x.sub.r,
These reflected lower marginal rays propagate parallel to plane 410T, rather than reaching pixel array 212 by direct reflection from bonding wire 830, or by an intermediate reflection from coverglass 340.
[0038] Instead of determining w(x) to reflect lower marginal rays parallel to plane 410T, w(x.sub.r) may be determined to reflect chief rays, with corresponding chief ray angles X(x.sub.r), parallel to plane 410T, such that
In a different embodiment, w(x.sub.r) may be determined to reflect upper marginal rays, with corresponding upper marginal ray angles β.sub.+(x.sub.r), parallel to plane 410T, such that
When upper marginal rays are reflected parallel to plane 410T, corresponding chief rays and lower marginal rays are reflected away from pixel array 212.
[0039] Alternatively, bonding wire 830 may have a height w(x.sub.r) above plane 410T and slope w′(x.sub.r) such that one more lower marginal rays incident thereon at respective positions x.sub.r (and corresponding angles β.sub.−(x.sub.r)) are reflected such that distance Δ.sub.r is less than clearance 813. In an embodiment, clearance 813 is between 200 μm and 600 μm. In the example of
[0040]
[0041] Bonding wire 1030 may include a non-qualifying region that forms an angle with plane 410T that is not between φ.sub.min and φ.sub.max. For example, one or more interface locations x.sub.1 and x.sub.2 may have a local slope w′(x.sub.r) that exceeds the slope of an adjacent region 1031 such that the angle with respect to plane 410T at the interface region not between φ.sub.min and φ.sub.max. As such regions can potentially cause bonding wire flare, the length of these regions should be minimized. In an embodiment, the length of such non-qualifying regions is less than ten percent of the length of bonding wire 1030 between positions x.sub.0 and x.sub.2.
[0042] Combinations of features:
[0043] Features described above as well as those claimed below may be combined in various ways without departing from the scope hereof. The following examples illustrate some possible, non-limiting combinations:
[0044] (A1) A flare-reducing imaging system includes an image sensor, a lens, and a bonding wire. The image sensor has a pixel array formed on a top surface of a substrate that includes a bonding pad on the substrate top surface between the pixel array and an edge of the substrate. The lens is above the pixel array and has an optical axis orthogonal thereto. The bonding wire is electrically connected to the bonding pad and has a region that forms a non-zero angle with respect to the substrate top surface and extends away from the optical axis. The non-zero angle is in at least one of a lower and an upper angular range for minimizing reflection of incident light on the region from reaching the image sensor. The lower angular range is selected such that the region reflects the incident light away from the pixel array toward a plane including the lens. The upper angular range is selected such that the region reflects the incident light to a clearance between the bonding pad and the pixel array.
[0045] (A2) In the flare-reducing imaging system denoted by (A1), the non-zero angle may exceed five degrees.
[0046] (A3) In a flare-reducing imaging system denoted by one of (A1) and (A2), the region may be between (a) the bonding pad and (b) a peak-height region of the bonding wire between the image sensor and the lens.
[0047] (A4) In a flare-reducing imaging system denoted by one of (A1) through (A3), the lower angular range may have an upper limit of 1/2β.sub.+, where β.sub.+ is the angle between an upper marginal ray and the optical axis.
[0048] (A5) In the flare-reducing imaging system denoted by (A4), in which the lens has a focal length f and a diameter D, the upper marginal ray may be incident on the bonding wire at a perpendicular distance x.sub.r from the optical axis and at a height h<<f above the top surface, angle β.sub.+may satisfy
[0049] (A6) In a flare-reducing imaging system denoted by one of (A5) and (A6), the clearance may be less than one hundred micrometers.
[0050] (A7) In a flare-reducing imaging system denoted by one of (A1) through (A6), the upper angular range may have a minimum angle φ.sub.min with respect to the substrate top surface, such that the clearance exceeds h(tan(π−3φ.sub.min+β.sub.−)−cot φ.sub.min), cot C.sub.nin), where β.sub.− is the propagation angle, with respect to the optical axis, of a lower marginal ray incident on the region at a height h above the top surface.
[0051] (A8) In a flare-reducing imaging system denoted by (A7), in which the lens has a focal length f and a diameter D, and the incident light reflects off the bonding wire at a perpendicular distance x.sub.r from the optical axis and at a height h<<f above the top surface, angle β.sub.− may satisfy
[0052] (A9) In a flare-reducing imaging system denoted by one of (A7) and (A8), clearance may be less than six hundred micrometers.
[0053] (B1) A flare-reducing image sensor capable of capturing an image formed by a lens having an optical axis orthogonal thereto includes a substrate and a bonding wire. The substrate has a pixel array formed thereon, and includes a bonding pad on a top surface of the substrate between the pixel array and an edge of the substrate. The bonding wire is electrically connected to the bonding pad and has a region forming a non-zero angle with respect to the substrate top surface and extending away from the pixel array. The non-zero angle is in at least one of a lower and an upper angular range for minimizing reflection of incident light on the region from reaching the image sensor. The lower angular range is selected such that the region reflects the incident light away from the pixel array toward a plane including the lens. The upper angular range is selected such that the region reflects the incident light to a clearance between the bonding pad and the pixel array.
[0054] (B2) In the flare-reducing image sensor denoted by (B1), the non-zero angle may exceed five degrees.
[0055] (B3) In a flare-reducing image sensor denoted by one of (B1) and (B2), the region may be between (a) the bonding pad and (b) a peak-height region of the bonding wire above a plane containing the substrate top surface.
[0056] (B4) In a flare-reducing image sensor denoted by one of (B1) through (B3), the lower angular range may have an upper limit of 1/2β.sub.+, where β.sub.+ is the angle between an upper marginal ray and an image sensor normal.
[0057] (B5) In the flare-reducing image sensor denoted by (B4), in which the lens has a focal length f and a diameter D, the upper marginal ray is incident on the bonding wire at a perpendicular distance x.sub.r from the optical axis and at a height h<<f above the top surface, angle β.sub.+ may satisfy
[0058] (B6) In a flare-reducing image sensor denoted by one of (B5) and (B6), the clearance may be less than one hundred micrometers
[0059] (B7) In a flare-reducing image sensor denoted by one of (B1) through (B6), the upper angular range may have a minimum angle φ.sub.min with respect to the substrate top surface, such that the clearance exceeds h(tan(π−2φ.sub.min+β.sub.−)−cot φ.sub.min), where β.sub.− is the propagation angle, with respect to the optical axis, of a lower marginal ray incident on the region at a height h above the top surface.
[0060] (B8) In a flare-reducing image sensor denoted by (B7), in which the lens has a focal length f and a diameter D, and the incident light reflects off the bonding wire at a perpendicular distance x.sub.r from the optical axis and at a height h<<f above the top surface, angle β.sub.− may satisfy
[0061] (B9) In a flare-reducing image sensor denoted by one of (B7) and (B8), clearance may be less than six hundred micrometers.
[0062] Changes may be made in the above methods and systems without departing from the scope hereof. It should thus be noted that the matter contained in the above description or shown in the accompanying drawings should be interpreted as illustrative and not in a limiting sense. The following claims are intended to cover all generic and specific features described herein, as well as all statements of the scope of the present method and system, which, as a matter of language, might be said to fall therebetween.