DIFFRACTIVE OPTICAL ELEMENT, PARTITIONED UNIFORM LIGHT PROJECTION SYSTEM, ELECTRONIC DEVICE AND DESIGN METHOD
20230092042 · 2023-03-23
Inventors
- Muyun WANG (Hangzhou, CN)
- Yuming SONG (Hangzhou, CN)
- Peng CHEN (Hangzhou, CN)
- Xiaodong YIN (Hangzhou, CN)
Cpc classification
H01S5/183
ELECTRICITY
G02B27/42
PHYSICS
H01S5/005
ELECTRICITY
G02B5/1866
PHYSICS
G02B27/4233
PHYSICS
G02B27/00
PHYSICS
International classification
G02B27/42
PHYSICS
G02B27/00
PHYSICS
Abstract
A diffractive optical element (10) comprises a microstructure plane provided thereon with at least one microstructural pattern unit. The diffractive optical element (10) can receive a light beam emitted from a partitioned light source array (20) and project a light field on a target surface (OB), wherein the partitioned light source array (20) comprises a plurality of light source arrays (20-1, 20-2, ..., 20-n) spaced along a first direction, and the microstructural pattern unit is configured to be capable of diverging and light homogenization-modulating a light beam emitted from a light source in the plurality of light source arrays (20-1, 20-2, ..., 20-n) along the first direction such that light field regions projected by adjacent light source arrays (20-1, 20-2, ..., 20-n) on the target surface are adjoined or overlapped with each other in the first direction. In the embodiments of the invention, there are gaps between adjacent partitions. The light source partitions are lightened in turn. When each light source partition is lightened, only a region in the target light field corresponding to the partition is illuminated uniformly. Moreover, when all partitions are lightened together, the whole target light field is illuminated uniformly. There is no dark space caused by gaps between partitions, thereby realizing uniform illumination of partitions in the target light field.
Claims
1. A diffractive optical element, comprising a microstructure plane, the microstructure plane provided thereon with at least one microstructural pattern unit, the diffractive optical element capable of receiving a light beam emitted from a partitioned light source array and projecting a light field on a target surface, wherein the partitioned light source array comprises a plurality of light source arrays spaced along a first direction, and the microstructural pattern unit is configured to be capable of diverging and light homogenization-modulating a light beam emitted from a light source in the plurality of light source arrays along the first direction such that light field regions projected by adjacent light source arrays on the target surface are adjoined or overlapped with each other in the first direction.
2. The diffractive optical element as claimed in claim 1, wherein the plurality of light source arrays have intervals along a second direction which is vertical to the first direction, wherein the microstructural pattern unit is configured to be capable of diverging and light homogenization-modulating a light beam emitted from a light source in the plurality of light source arrays along the second direction such that the light field regions projected by adjacent light source arrays on the target surface are adjoined or overlapped with each other in the second direction.
3. The diffractive optical element as claimed in claim 1, wherein the diffractive optical element has a focal power such that a light beam emitted by each light source array is diverged in the first direction and/or the second direction, and the microstructural pattern unit is configured to be capable of perform light homogenization modulation within a divergent scope.
4. The diffractive optical element as claimed in claim 2, wherein the diffractive optical element has different focal powers in the first direction and the second direction such that the aspect ratio of the partitioned light source array is matched with that of the light field region on the target surface in the first direction and the second direction.
5. The diffractive optical element as claimed in claim 2, wherein the microstructural pattern unit is configured to be capable of splitting, diverging and light homogenization-modulating a light beam emitted from a light source in the plurality of light source arrays along the first direction; and/or the microstructural pattern unit is configured to be capable of splitting, diverging and light homogenization-modulating a light beam emitted from a light source in the plurality of light source arrays along the second direction.
6. The diffractive optical element as claimed in claim 1, wherein the microstructural pattern unit is configured to enable a light field projected by each light source array after divergence and homogenization to reach at least middle of the interval between adjacent light source arrays.
7. A partitioned uniform light projection system, comprising: a partitioned light source array, the partitioned light source array comprising a plurality of light source arrays spaced along a first direction, the plurality of light source arrays having intervals along the first direction; a diffractive optical element, provided downstream of a light path of the partitioned light source array and capable of receiving a light beam emitted from the plurality of light source arrays and projecting a light field on a target surface, the diffractive optical element comprising a microstructure plane, the microstructure plane provided thereon with at least one microstructural pattern unit, the microstructural pattern unit being configured to be capable of diverging and light homogenization-modulating a light beam emitted from a light source in the plurality of light source arrays along the first direction such that light field regions projected by adjacent light source arrays on the target surface are adjoined or overlapped with each other in the first direction.
8. The partitioned uniform light projection system as claimed in claim 7, wherein the plurality of light source arrays have intervals along a second direction which is vertical to the first direction, wherein the microstructural pattern unit is configured to be capable of diverging and light homogenization-modulating a light beam emitted from a light source in the plurality of light source arrays along the second direction such that the light field regions projected by adjacent light source arrays on the target surface are adjoined or overlapped with each other in the second direction.
9. The partitioned uniform light projection system as claimed in claim 7, wherein the diffractive optical element has a focal power such that a light beam emitted by each light source array is diverged in the first direction and/or the second direction, and the microstructural pattern unit is configured to be capable of perform light homogenization modulation within a divergent scope.
10. The partitioned uniform light projection system as claimed in claim 8, wherein the diffractive optical element has different focal powers in the first direction and the second direction such that the aspect ratio of the partitioned light source array is matched with that of a light field region on the target surface in the first direction and the second direction.
11. The partitioned uniform light projection system as claimed in claim 8, wherein the microstructural pattern unit is configured to be capable of splitting, diverging and light homogenization-modulating a light beam emitted from a light source in the plurality of light source arrays along the first direction; and/or the microstructural pattern unit is configured to be capable of splitting, diverging and light homogenization-modulating a light beam emitted from a light source in the plurality of light source arrays along the second direction.
12. The partitioned uniform light projection system as claimed in claim 7, wherein the microstructural pattern unit is configured to enable a light field projected by each light source array after divergence and homogenization to reach at least middle of the interval between adjacent light source arrays.
13. A design method of a diffractive optical element, comprising: obtaining parameters of the partitioned light source array which comprises a plurality of light source arrays, the plurality of light source arrays having intervals along a first direction, the parameters comprising widths of the intervals along the first direction; obtaining parameters of a target light field on a target surface, comprising a distance between the target light field and the partitioned light source array; determining parameters of the diffractive optical element such that the diffractive optical element can diverge and light homogenization-modulate a light beam emitted from a light source in the plurality of light source arrays along the first direction such that light field regions projected by adjacent light source arrays on the target surface are adjoined or overlapped with each other in the first direction.
14. The design method as claimed in claim 13, wherein the plurality of light source arrays have intervals along a second direction which is vertical to the first direction, wherein the step of determining parameters of the diffractive optical element comprise: determining the parameters of the diffractive optical element such that the diffractive optical element can diverge and light homogenization-modulate a light beam emitted from a light source in the plurality of light source arrays such that the light field regions projected by adjacent light source arrays on the target surface are adjoined or overlapped with each other in the second direction.
15. The design method as claimed in claim 13, wherein the step of determining parameters of the diffractive optical element comprise: determining a first phase distribution of the diffractive optical element, the first phase distribution capable of providing a focal power such that a light beam emitted by each light source array is diverged in the first direction and/or the second direction; determining a second phase distribution of the diffractive optical element, the second phase distribution capable of light homogenization-modulating a light beam emitted by each light source array within a divergent scope in the first direction and/or the second direction; and superposing the first phase distribution and the second phase direction.
16. The design method as claimed in claim 14, wherein the step of determining parameters of the diffractive optical element comprise: determining different focal powers of the diffractive optical element in the first direction and the second direction according to the aspect ratio of the partitioned light source array in the first direction and the second direction and the aspect ratio of the target light field in the first direction and the second direction such that the aspect ratio of the partitioned light source array is matched with that of the target light field in the first direction and the second direction.
17. The design method as claimed in claim 14, wherein the step of determining parameters of the diffractive optical element comprise: determining parameters of the diffractive optical element such that the diffractive optical element splits, diverges and light homogenization-modulates a light beam emitted from a light source in the plurality of light source arrays along the first direction; and/or the diffractive optical element splits, diverges and light homogenization-modulates a light beam emitted from a light source in the plurality of light source arrays along the second direction.
18. The design method as claimed in claim 14, wherein a light field projected by each light source array after divergence and homogenization reaches at least middle of the interval between adjacent light source arrays.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
[0029] The drawings that constitute part of the specification are provided for further understanding the invention, and are used for explaining the invention along with the schematic embodiments of the invention and explanation thereof, but do not make any limitation of the same. In the drawings:
[0030]
[0031]
[0032]
[0033]
[0034]
[0035]
[0036]
[0037]
[0038]
DETAILED DESCRIPTION OF THE EMBODIMENTS OF THE INVENTION
[0039] Certain exemplary embodiments will be described below only in a brief manner. Just as those skilled in the art will recognize, changes in various ways to the embodiments described herein can be carried out without departing from the spirit or scope of the invention. Therefore, the drawings and the following description are deemed essentially exemplary, instead of limitative.
[0040] In the description of the invention, it needs to be understood that the orientation or position relations denoted by such terms as “central” “longitudinal” “latitudinal” “length” “width” “thickness” “above” “below” “front” “rear” “left” “right” “vertical” “horizontal” “top” “bottom” “inside” “outside” “clockwise” “counterclockwise” and the like are based on the orientation or position as shown in the accompanying drawings, and are used only for the purpose of facilitating description of the invention and simplification of the description, instead of indicating or suggesting that the denoted devices or elements must be oriented specifically, or configured or operated in some specific orientation. Thus, such terms should not be construed to limit the invention. In addition, such terms as “first” and “second” are only used for the purpose of description, rather than indicating or suggesting relative importance or implicitly indicating the number of the designated technical features. Accordingly, features defined with “first” or “second” may, expressly or implicitly, include one or more of such features. In the description of the invention, “plurality” means two or above, unless otherwise defined explicitly and specifically.
[0041] In the description of the invention, it needs to be noted that, unless otherwise specified and defined explicitly, such terms as “mount” “link” and “connect” should be understood as generic terms. For example, connection may refer to fixed connection, dismountable connection, or integrated connection; also to mechanical connection, electrical connection or intercommunication; further to direct connection, or indirect connection by an intermediary medium; or even to internal communication between two elements or interaction between two elements. For those skilled in the art, they can construe the specific meaning of such terms herein in light of the specific circumstances.
[0042] Herein, unless otherwise specified and defined explicitly, if a first feature is “above” or “below” a second one, this may cover the direct contact between the first and second features, also cover the contact via another feature therebetween, instead of the direct contact. Furthermore, if a first feature “above”, “over” or “on the top of” a second one, this may cover the case that the first feature is right above or on the inclined top of the second feature, or just indicate that the first feature has a horizontal height higher than that of the second feature. If a first feature is “below”, “under” or “on the bottom of” a second feature, this may cover the case that the first feature is right below and on the inclined bottom of the second feature, or just indicates that the first feature has a horizontal height lower than that of the second feature.
[0043] The disclosure below provides many different implementations or cases so as to realize different structures described in the invention. In order to simplify the disclosure of the invention, the parts and arrangements embodied in specific cases will be described below. Surely, they are just for the exemplary purpose, not intended to limit the invention. Besides, the invention may repeat a reference number and/or reference letter in different cases, and such repeat is for the purpose of simplification and clarity, which does not represent any relationship among various implementations and/or arrangements as discussed. In addition, the invention provides cases of various specific techniques and materials, but those skilled in the art can also be aware of application of other techniques and/or use of other materials.
[0044] The embodiments of the invention will be introduced below with reference to the drawings. It should be appreciated that the embodiments described here are only for the purpose of illustrating and explaining, instead of restricting, the invention.
[0045]
[0046]
[0047] Within each light source array, there are small intervals between adjacent light sources (or light emitting points). Thus, after modulated by the diffractive optical element 10, light beams emitted from each light source can be overlapped with each other, thereby projecting a uniform light field. There is generally a big interval DS between adjacent light source arrays, greater than a distance between adjacent light sources (or light emitting points) in the same light source array. If the diffractive optical element 10 does not perform special optical modulation, there will be many dark shadow regions along a second direction in the light field projected on the target surface OB.
[0048] The diffractive optical element 10 has a microstructure plane which is provided thereon with at least one microstructural pattern unit of various phase distribution. According to the invention, the microstructural pattern unit is configured to be capable of diverging and light homogenization-modulating a light beam emitted from a light source in the plurality of light source arrays along the first direction such that light field regions projected by adjacent light source arrays on the target surface OB are adjoined or overlapped with each other in the first direction. Thus, through the diffractive optical element 10, a uniform light field can be projected out on the target surface OB by a light beam emitted from the partitioned light source array 20, and dark shadow regions that may be brought about by intervals between adjacent light source arrays can be eliminated.
[0049]
[0050] The diffractive optical element 10 in the embodiment of
[0051] In embodiments of
[0052]
[0053] For realizing divergence of a light beam from each light source array in a first direction and/or a second direction, the diffractive optical element 10 can have a focal power in the first direction and/or the second direction, and the plurality of microstructural pattern units are configured to be capable of light homogenization-modulation within a divergent scope so as to ensure that the brightness of the light field projected is uniform as far as possible.
[0054] In addition, when the aspect ratio of a partitioned light source is different from that of a target light field, the diffractive optical element has different focal powers in the first direction and the second direction. That is, the divergence degree in the first direction is different from that in the second direction such that the aspect ratio of the partitioned light source array is matched with that of the light field region on the target surface in the first direction and the second direction.
[0055] With regard to the partitioned light source array illustrated in
[0056] In the embodiments of
[0057] As shown in
[0058] In addition, those skilled in the art will readily understand that the beam splitting solution described in
[0059] Therefore, in the embodiment above, the diffractive optical element 10 has five functions, namely, light homogenizing along a second direction; divergence along a second direction; light splitting along a first direction; divergence along a first direction; light homogenizing along a first direction. With regard to the five functions above, as the diffractive optical element has a high design freedom, the five functions above can be integrated. That is, after all parameters are determined, use of only a single diffractive optical element can realize the several functions above.
[0060] According to another preferred embodiment of the invention, as for each light source array, preferably, a light field projected by each light source array after divergence and light homogenization can at least reach middle of an interval DS such that light field projected by adjacent light source arrays after divergence and light homogenization can be overlapped. Further preferably, a light field projected by each light source array after divergence and light homogenization can reach an edge of a light field projected by an adjacent light source arrays (not diverged and homogenized) such that there will be no region which is not lightened even in case of an assembly error. As shown in
[0061] The forgoing describes a partitioned uniform light projection system and a diffractive optical element in accordance with embodiments of the invention. The forgoing partitioned uniform light projection system can be incorporated with an electronic device where uniform light projection is required, including but not limited to mobile phones, PADs, electronic locks and the like.
[0062]
[0063] In step S201, parameters of a partitioned light source array are obtained. The partitioned light source array comprises a plurality of light source arrays. The plurality of light source arrays such as the partitioned light source array 20 as shown in
[0064] In step S202, parameters of a target light field on the target surface are obtained, comprising a distance between the target light field and the partitioned light source array.
[0065] In step S203, parameters of the diffractive optical element are calculated such that the diffractive optical element can diverge and light homogenization-modulate a light beam emitted from a light source in the plurality of light source arrays along the first direction such that light field regions projected by adjacent light source arrays on the target surface are adjoined or overlapped with each other in the first direction.
[0066] According to one embodiment of the invention, the plurality of light source arrays such as the partitioned light source array as shown in
[0067] According to one embodiment of the invention, the step S203 comprises:
[0068] A first phase distribution of the diffractive optical element is calculated, and the first phase distribution can provide a focal power such that a light beam emitted by each light source array is diverged in a first direction and/or a second direction.
[0069] A second phase distribution of the diffractive optical element is calculated, and the second phase distribution can light homogenization-modulate a light beam emitted by each light source array within a divergent scope in the first direction and/or the second direction; and
[0070] The first phase distribution and the second phase distribution are superposed.
[0071] According to one embodiment of the invention, the step S203 comprises: different focal powers of the diffractive optical element in the first direction and the second direction are calculated according to the aspect ratio of the partitioned light source array in the first direction and the second direction and the aspect ratio of the target light field in the first direction and the second direction such that the aspect ratio of the partitioned light source array is matched with that of the target light field in the first direction and the second direction.
[0072] According to one embodiment of the invention, the step S203 comprises: parameters of the diffractive optical element are calculated such that the diffractive optical element splits, diverges, and light homogenization-modulates a light beam emitted from a light source in the plurality of light source arrays along the first direction, and/or the diffractive optical element splits, diverges, and light homogenization-modulates a light beam emitted from a light source in the plurality of light source arrays along the second direction.
[0073] According to one embodiment of the invention, a light field projected by each light source array after divergence and homogenization can at least reach middle of an interval between adjacent light source arrays.
[0074] According to one embodiment of the invention, the step S203 comprises: a third phase distribution of the diffractive optical element is calculated, and the third phase distribution can provide beam splitting for a light beam emitted by each light source array; the first phase distribution, the second phase distribution and the third phase distribution are superposed.
[0075] The invention also relates to an optical modulation element which is designed with the foregoing design method 200.
[0076] The forgoing describes preferred embodiments of the invention, wherein one column of partitions can be adopted, and two columns of partitions can also be adopted for a light source array of the VCSEL, which may provide different solutions, respectively. For example, a light source of the VCSEL is divided into 1*12 or 2 \*8 partitions. There are gaps (intervals) between adjacent partitions. Light source partitions are lightened in turn. When each light source partition is lightened, only a region in the target light field corresponding to the partition is illuminated uniformly. Moreover, when all partitions are lightened together, the whole target light field is illuminated uniformly, and there is no dark area caused by gaps between partitions. When one column of partitions is adopted for the light source, partitioned illumination can be realized through a single DOE. When two columns of partitions are adopted for the light source, a single DOE solution may also be used to realize uniform illumination of partitions in the target light field.
[0077] It should be noted finally that the contents described above are just preferred embodiments of the invention, and are not used to limit the invention. Although the detailed description of the invention has been provided with reference to the foregoing embodiments, those skilled in the art may still make modifications to the technical solution as recited in each of the foregoing embodiments, or conduct equivalent replacement of some technical features therein. Any modification, equivalent replacement, or improvement, if only falling into the spirit and principles as stated herein, should be included in the scope of protection of the invention.