HomeElectronicsSensorsWidespread Use of LiDAR Systems in the Future

Widespread Use of LiDAR Systems in the Future

Taking a critical step toward developing LiDAR systems for widespread commercial applications, CEA-Leti has developed genetic algorithms to calibrate high-channel-count optical phased arrays (OPAs), as well as an advanced measurement setup enabling wafer-scale OPA characterization.

OPAs are an emerging technology made of arrays of closely spaced (around 1µm) optical antennas and which radiate coherent light in a broad angular range. The produced interference pattern can then be changed by adjusting the relative phase of the light emitted by each antenna. For example, if the phase gradient between the antennas is linear, a directional beam will be formed. By changing the slope of the linear gradient, the direction of the beam can be controlled, which enables solid-state beam steering.

This can improve performance in scanning speed, power efficiency and resolution compared to the heavy, power-hungry and expensive mechanical beam-steering systems used in current LiDARs. An additional feature of OPA-based LiDAR systems is that they have no moving parts, as the solid-state beam steering is achieved only by phase tuning the antennas, which significantly reduces the size and cost of these systems.

CEA-Leti reported the calibration and characterization results at Photonics West 2021 Digital Forum, in a paper titled “Development, Calibration and Characterization of Silicon Photonics-Based Optical Phased Arrays”.

“The development of a high-performance OPA would pave the way to inexpensive LiDAR systems for autonomous vehicles, holographic displays, biomedical imaging and many other applications,” said Sylvain Guerber, the lead author of the paper. “But widespread adoption of LiDAR will hinge on lower system costs and smaller form factors.”

LiDAR, which stands for light detection and ranging, has emerged as a key enabling technology for tomorrow’s sensing and vision systems. In addition to automotive and medical uses, they could enable autonomous mobility for drones and robots, as well as industrial automation. Commercial LiDAR systems must meet stringent requirements, especially for automotive applications. In particular, a high-power and low-divergence beam is needed to accurately resolve a scene. For example, resolving a 10cm object at 100m requires an OPA operating at a wavelength of 1µm with a circuit consisting of at least 1,000 antennas, each spaced 1µm apart. Therefore, the development of high-channel-count OPAs is necessary for a commercial OPA-based LiDAR system.

An integrated chip-scale OPA with solid-state beam steering can be produced by leveraging the benefits of a mature silicon photonics platform, Guerber said. However, this is only the first step toward a fully functional OPA because beam scanning requires a preliminary calibration. Due to the high number of required optical antennas, this calibration process can take a large amount of time, which is incompatible with massive deployment of a technology. Thus, the CEA-Leti team has developed what may be the first wafer-scale OPA characterization setup, which is an important step toward industrialization of OPA-based LiDARs. In addition, genetic algorithms based on Darwin’s theory of evolution have been developed to quickly and reliably calibrate high-channel-count OPAs. These allow up to 1,000x faster calibration than previously used algorithms.

Guerber noted that broad commercial adoption of LiDAR technology by the automotive industry and other markets is projected to be several years down the road. OPAs are a critical step, which CEA-Leti will continue to work on.

“There are still a lot of challenges, especially at the system level,” he explained. “A LiDAR is composed of many elements: a laser, an electronic driver, an OPA steering system, a detector and data-treatment capability. All of them must work together; the OPA is only a part of the system.”

This work was partially funded by the French ANR via Carnot funding, the ECSEL Vizta European project and the French National Program “Programme d’investissement d’avenir, IRT Nanoelec, n° ANR-10-AIRT-05

ELE Times Research Desk
ELE Times Research Deskhttps://www.eletimes.ai
ELE Times provides a comprehensive global coverage of Electronics, Technology and the Market. In addition to providing in depth articles, ELE Times attracts the industry’s largest, qualified and highly engaged audiences, who appreciate our timely, relevant content and popular formats. ELE Times helps you build awareness, drive traffic, communicate your offerings to right audience, generate leads and sell your products better.

Related News

Must Read

INFAC Develops 800V-to-48V Power Conversion Technology to Targets Higher EV Efficiency

South Korea's INFAC Corporation has introduced a new 800V...

Why India Needs Smarter and More Standardised EV Charging Infrastructure

India's rapidly expanding network of electric-vehicle chargers still faces...

Rare-Earth-Free EV Motors: How India Could Reduce Dependence on Critical Magnet Materials

India is exploring new electric-motor technologies that may help...

India Tightens EV Localisation Rules, Putting Traction Motor Technology in Focus

India is moving toward higher domestic manufacturing of key...

Indian Army Launches AASHVAST Lab to Detect Chinese Components and Cyber Threats

To strengthen the security of military drones and identify...

AeroVironment Receives First International Order for LOCUST Laser System

AeroVironment announced that it received the first international order...

Covenant Introduces a Mass-Produced Cruise Missile Called Anthem

US defence firm Covenant has unveiled its Anthem, a...

The DRDO’s SHIELD Programme Focused on Microwave & Drone-Electronics Testing

India is developing its directed energy capability through the...

1.10 Lakh Crore Indian Defence Technology Pipeline Approved

The DAC (Defence Acquisition Council) of India approved, to...

India Will Open AI Labs for Sri Lankan Army

India is now helping Sri Lanka set up an...