IP Library Granted Patent US 12,663,684
Granted Patent B2
US 12,663,684 · App. 18/292,090 · Granted Jun 23, 2026

Method for improved facade-level aesthetics of dynamic glass

Inventors: Illayathambi Kunadian (San Jose, CA); Dmytro Poplavskyy (Milpitas, CA); Sridhar Karthik Kailasam (Fremont, CA)
Assignee: View Operating Corporation
G02F1/163E06B3/6722E06B9/24G02F1/0121E06B2009/2464G02F2201/58
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Quick Facts
Patent No.
US 12,663,684
App. No.
18/292,090
Granted
Jun 23, 2026
Kind
B2
Abstract

Aspects of this disclosure concern controllers and control methods for transitioning a group of optically switchable devices. Such devices are often provided on windows such as architectural glass. In certain embodiments, the methods transition multiple optically switchable devices that are positioned in proximity as a group. The methods apply different drive voltages to different devices in a group. In these or other cases, a group of optically switchable devices may transition together over a particular duration to achieve approximately uniform tint states over time during the transition without slowing down transitioning of faster optically switchable devices in the group.

Claims (50)

1 . A method of transitioning a group of optically switchable devices, the method comprising:

(a) receiving a command to transition the group of optically switchable devices to an ending optical state, wherein the group of optically switchable devices comprises a slowest optically switchable device and a faster optically switchable device, and wherein the slowest optically switchable device transitions at a transitioning speed slower than or equal to any other optically switchable device in the group when a same drive voltage is applied to each optically switchable device of the group of optically switchable devices;

(b) transitioning the slowest optically switchable device to the ending optical state by applying a first drive voltage to the slowest optically switchable device; and

(c) during (b), transitioning the faster optically switchable device to the ending optical state by applying a second drive voltage to the faster optically switchable device, wherein the first drive voltage has a larger magnitude than the second drive voltage.

2 . The method of claim 1 , wherein an average transitioning speed of the faster optically switchable device and an average transitioning speed of the slowest optically switchable device are about the same in a time period starting when the command is received and ending when all optically switchable devices of the group of optically switchable devices reach the ending optical state.

3 . The method of claim 1 , wherein the faster optically switchable device and the slowest optically switchable device take about a same amount of time to transition to an intermediate optical state before transitioning to the ending optical state, the intermediate optical state having an optical density that is between an optical density of a starting optical state and an optical density of the ending optical state.

4 . The method of claim 1 , wherein the second drive voltage generates a current having a signal to noise ratio larger than a specified criterion.

5 . The method of claim 1 , wherein:

the transitioning of (b) further comprises, before applying the first drive voltage, applying a first ramp-to-drive voltage to the slowest optically switchable device,

the transitioning of (c) further comprises, before applying the second drive voltage, applying a second ramp-to-drive voltage to the faster optically switchable device, and

the first ramp-to-drive voltage has a faster ramp rate than the second ramp-to-drive voltage.

6 . The method of claim 1 , wherein:

a transition of the slowest optically switchable device to the ending optical state is determined to be complete when an open circuit voltage of the slowest optically switchable device reaches a first target open circuit voltage,

a transition of the faster optically switchable device to the ending optical state is determined to be complete when an open circuit voltage of the faster optically switchable device reaches a second target open circuit voltage, and

the first target open circuit voltage is closer to zero than the second target open circuit voltage.

7 . The method of claim 1 , wherein the slowest optically switchable device has a larger surface area than the faster optically switchable device.

8 . The method of claim 1 , wherein (b) and (c) occur in about a same period of time.

9 . The method of claim 1 , further comprising: receiving information of the group of optically switchable devices and obtaining drive voltage data for the group of optically switchable devices.

10 . The method of claim 1 , wherein:

(a) a bus bar distance of the slowest optically switchable device is larger than a bus bar distance of the faster optically switchable device; or

(b) a diagonal bus bar distance of the slowest optically switchable device is larger than a diagonal bus bar distance of the faster optically switchable device.

11 . The method of claim 1 , wherein the group of optically switchable devices comprises a third optically switchable device, and wherein the third optically switchable device transitions faster than the faster optically switchable device when the same drive voltage is applied to the group of optically switchable devices, and wherein the method further comprises during (b), transitioning the third optically switchable device to the ending optical state by applying a third drive voltage to the third optically switchable device, wherein the second drive voltage has a larger magnitude than the third drive voltage.

12 . The method of claim 11 , wherein a BBD of the slowest optically switchable device is larger than a bus bar distance of the faster optically switchable device, and the bus bar distance of the faster optically switchable device is larger than a bus bar distance of the third optically switchable device.

13 . The method of claim 11 , wherein a diagonal bus bar distance of the slowest optically switchable device is larger than a diagonal bus bar distance of the faster optically switchable device, and the diagonal bus bar distance of the faster optically switchable device is larger than a diagonal bus bar distance of the third optically switchable device.

14 . The method of claim 1 , further comprising:

(d) receiving a command to transition a second group of optically switchable devices to the ending optical state, wherein the second group comprises a second-group slowest optically switchable device and a second-group faster optically switchable device, wherein the second-group slowest optically switchable device transitions at a transitioning speed slower than or equal to any other optically switchable device in the second group when the same drive voltage is applied to each optically switchable device of the second group of optically switchable devices;

(e) during (b), transitioning the second-group slowest optically switchable device to the ending optical state by applying a third drive voltage to the second-group slowest optically switchable device; and

(f) during (b), transitioning the second-group faster optically switchable device to the ending optical state by applying a fourth drive voltage to the second-group faster optically switchable device, wherein the third drive voltage has a larger magnitude than the fourth drive voltage.

15 . The method of claim 14 , wherein the faster optically switchable device, the slowest optically switchable device, the second-group faster optically switchable device, and the second-group slowest optically switchable device reach the ending optical state at approximately the same time.

16 . The method of claim 1 , wherein a transition of the slowest optically switchable device is monitored using feedback obtained during the transition of the slowest optically switchable device.

17 . The method of claim 16 , wherein the feedback obtained during the transition of the slowest optically switchable device comprises one or more parameters selected from the group consisting of: an open circuit voltage, a current measured in response to an applied voltage, and a charge or charge density delivered to the slowest optically switchable device.

18 . The method of claim 17 , wherein the feedback obtained during the transition of the slowest optically switchable device comprises the open circuit voltage and the charge or charge density delivered to the slowest optically switchable device.

19 . The method of claim 18 , wherein a transition of the faster optically switchable device is monitored using the feedback obtained during the transition of the faster optically switchable device.

20 . The method of claim 19 , wherein the feedback obtained during the transition of the faster optically switchable device comprises one or more parameters selected from the group consisting of: an open circuit voltage, a current measured in response to an applied voltage, and a charge or charge density delivered to the faster optically switchable device.

21 . The method of claim 20 , wherein the feedback obtained during the transition of the faster optically switchable device comprises the charge or charge density delivered to the faster optically switchable device, and does not comprise the open circuit voltage, nor the current measured in response to the applied voltage.

22 . The method of claim 1 , further comprising applying a hold voltage to each device of the group of optically switchable devices as each device reaches the ending optical state.

23 . The method of claim 1 , further comprising:

in response to receiving a command to transition the group of optically switchable devices to a second ending optical state before the group of optically switchable devices reaches the ending optical state, transitioning the slowest optically switchable device and the faster optically switchable device to the second ending optical state without any pauses.

24 . The method of claim 1 , wherein the faster optically switchable device transitions to the ending optical state without pausing.

25 . The method of claim 1 , further comprising determining a starting optical state of each optically switchable device of the group of optically switchable devices using feedback obtained from each optically switchable device before each optically switchable device starts to transition.

26 . The method of claim 25 , wherein the feedback obtained from each optically switchable device before each optically switchable device starts to transition comprises one or more parameters selected from the group consisting of: an open circuit voltage, a current measured in response to an applied voltage, and a charge or charge density.

27 . The method of claim 25 , wherein the first drive voltage and the second drive voltage are selected based at least in part on the starting optical state.

28 . A control system comprising one or more processors and memory storing instructions that, when executed by the one or more processors, cause the control system to:

(a) receive a command to transition a group of optically switchable devices to an ending optical state, wherein the group of optically switchable devices comprises a slowest optically switchable device and a faster optically switchable device, and wherein the slowest optically switchable device transitions no faster than any other optically switchable device in the group when a same drive voltage is applied to the group of optically switchable devices;

(b) transition the slowest optically switchable device to the ending optical state by applying a first drive voltage to the slowest optically switchable device; and

(c) during (b), transition the faster optically switchable device to the ending optical state by applying a second drive voltage to the faster optically switchable device, wherein the first drive voltage has a larger magnitude than the second drive voltage.

29 . A computer program product comprising one or more non-transitory storage media having stored thereon instructions that, when executed by one or more processors of a control system, cause the control system to control a group of optically switchable devices, the instructions comprising:

(a) receiving a command to transition the group of optically switchable devices to an ending optical state, wherein the group of optically switchable devices comprises a slowest optically switchable device and a faster optically switchable device, and wherein the slowest optically switchable device transitions no faster than any other optically switchable device in the group when a same drive voltage is applied to the group of optically switchable devices;

(b) transitioning the slowest optically switchable device to the ending optical state by applying a first drive voltage to the slowest optically switchable device; and

(c) during (b), transitioning the faster optically switchable device to the ending optical state by applying a second drive voltage to the faster optically switchable device, wherein the first drive voltage has a larger magnitude than the second drive voltage.

Assignments (2)
MERGER AND CHANGE OF NAME Recorded Dec 19, 2024
From: VIEW, INC.; PVMS MERGER SUB, INC.; VIEW OPERATING CORPORATION
To: VIEW OPERATING CORPORATION
Reel/Frame 069743/0586 →
ASSIGNMENT OF ASSIGNOR'S INTEREST Recorded Mar 22, 2024
From: KUNADIAN, ILLAYATHAMBI; POPLAVSKYY, DMYTRO; KAILASAM, SRIDHAR KARTHIK
To: VIEW, INC.
Reel/Frame 066872/0043 →
Continuity (11)
Continuation In Part 17812328 · Jul 13, 2022
Continuation In Part 17444010 · Jul 29, 2021
Continuation 16132226 · Sep 14, 2018
Continuation 15705170 · Sep 14, 2017
Continuation 15286193 · Oct 5, 2016
Continuation In Part 14900037
Continuation In Part 13931459 · Jun 28, 2013
Provisional Application 63389802 · Jul 15, 2022
Provisional Application 63203529 · Jul 27, 2021
Provisional Application 62239776 · Oct 9, 2015
Related Publication 20250093725A1 · Mar 20, 2025
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