Space & Satellites
Rocket Lab Acquires Optical Support to Enhance National Security Payloads
Rocket Lab acquires Optical Support Inc. to integrate optical manufacturing, boosting national security payload capabilities and supporting Geost.

This article is based on an official press release from Rocket Lab.
Rocket Lab Acquires Optical Support Inc. to Bolster National Security Payload Capabilities
Rocket Lab USA, Inc. (Nasdaq: RKLB) has announced the acquisition of Optical Support Inc. (OSI), a Tucson-based engineering firm renowned for its high-precision optical and optomechanical instruments. Announced on February 26, 2026, this strategic move aims to vertically integrate Rocket Lab’s supply chain, specifically enhancing its ability to deliver national security payloads and supporting its Geost business unit.
The acquisition brings critical manufacturing capabilities in-house, allowing Rocket Lab to control the production of sub-assemblies such as lenses, mirrors, and housings. These components are essential for sensors used in Space Domain Awareness (SDA), missile warning, and tracking systems, technologies central to current U.S. defense initiatives.
Strategic Vertical Integration
According to the company’s announcement, the acquisition of OSI is a direct effort to secure the supply-chain for Geost, a sensor manufacturer Rocket Lab acquired in 2025. OSI has historically been a key supplier for Geost, bridging the gap between optical design and mechanical engineering.
By bringing OSI under the Rocket Lab umbrella, the company gains a 22,000-square-foot facility in Tucson, Arizona, along with a specialized workforce of approximately 20 employees. This team includes optical engineers, machinists, and technicians skilled in CNC machining, optical alignment, and cleanroom assembly.
Rocket Lab Founder and CEO Sir Peter Beck emphasized the critical nature of optical systems in modern spaceflight:
“Optical systems play a large and vital role in gathering critical data for the most impactful space missions of today and the future… The high performing technology behind many of those missions comes from the team at Optical Support, Inc.”
, Sir Peter Beck, CEO of Rocket Lab
A History of High-Profile Engineering
OSI is described in industry reports as a boutique firm with a significant reputation in the optics sector. Beyond its work for Geost, the company has contributed to some of the most complex engineering projects in recent history.
Notable projects attributed to OSI include:
- NASA’s James Webb Space Telescope (JWST): Providing optomechanical systems and tooling.
- Sphere Las Vegas: Supplying optical technology for the venue’s advanced display systems.
- Defense & Intelligence: A long history of classified work supporting U.S. government missions.
Michael Savard, President of OSI, will join Rocket Lab along with his team to continue leading these operations. In a statement regarding the acquisition, Savard highlighted the synergy between the two companies:
“Optical Support, Inc. has been enabling some of the nation’s most critical missions for more than 20 years… Rocket Lab’s track record of acquiring best-in-class space systems technologies and successfully scaling them… has been proven multiple times over.”
, Michael Savard, President of Optical Support Inc.
AirPro News Analysis
This acquisition reinforces a broader trend in Rocket Lab’s strategy to evolve from a launch provider into a comprehensive “space prime” contractor. By securing the manufacturing of critical optical components, Rocket Lab reduces its reliance on third-party vendors, potentially increasing the speed at which it can iterate on complex hardware.
Furthermore, the move strengthens the company’s footprint in Tucson, Arizona, often referred to as “Optics Valley.” With both Geost and OSI located in this hub, Rocket Lab is positioning itself as a major player in the U.S. defense industrial base, particularly for programs like the Space Development Agency’s Proliferated Warfighter Space Architecture (PWSA).
Recent Expansion Efforts
The OSI deal is part of a wider push by Rocket Lab to expand its global manufacturing capacity. Industry reports note that this announcement coincides with the acquisition of Precision Components Limited (PCL) in New Zealand. Together, these moves signal an aggressive approach to scaling production capabilities for both the Electron and Neutron launch vehicles as well as satellite systems.
Frequently Asked Questions
What is Optical Support Inc. (OSI)?
OSI is a Tucson-based engineering firm specializing in the design, manufacture, and testing of high-precision optical and optomechanical instruments.
Why did Rocket Lab acquire OSI?
The acquisition vertically integrates the supply chain for Rocket Lab’s space systems division, particularly supporting the Geost business unit and national security payloads.
What assets did Rocket Lab acquire?
Rocket Lab acquired a 22,000 sq. ft. facility in Tucson and a team of approximately 20 specialized employees, including optical engineers and machinists.
Was the deal value disclosed?
No, financial terms for the acquisition were not publicly released.
Sources
Photo Credit: Rocket Lab
Space & Satellites
SpaceX Starship Reaches Orbit on 14th Test Flight
SpaceX Starship achieved its first orbital insertion on Flight 14, deploying 26 Starlink V3 satellites from 275 km altitude.

This article summarizes reporting by Reuters by Joey Roulette, with additional information from SpaceX, Forbes, and Space.com.
Space Exploration Technologies Corp. (SpaceX) successfully launched its Starship vehicle on its 14th test flight on September 28, 2026, marking the heavy-lift rocket’s first successful insertion into Earth orbit and its first operational payload deployment.
Lifting off from the company’s Starbase facility near Brownsville, Texas, at 12:46 UTC (7:46 a.m. local time), the 40-story vehicle carried 26 Starlink V3 satellites. According to official statements from SpaceX, reaching orbit represents a critical transition for the program from passively safe suborbital developmental testing to operational spaceflight.
Orbital profile and payload deployment
The flight plan called for Starship to reach an altitude of 275 kilometers and complete six Earth orbits. Following a 10-hour orbital voyage, the upper stage was scheduled to splash down in the Pacific Ocean west of Chile.
During the ascent phase, the Super Heavy booster experienced a premature shutdown of a single Raptor engine, according to reporting by Forbes. The vehicle’s flight computer compensated for the loss of thrust, allowing Starship to successfully reach its target orbit without compromising the primary mission objectives.
The mission also served as the inaugural deployment of the company’s next-generation communications satellites. SpaceX noted that deploying the V3 satellites will deliver a payload designed to “dramatically expand connectivity speeds and reliability around the world.”
Regulatory approval and Artemis program implications
Prior to Flight 14, the Federal Aviation Administration (FAA) issued modified launch licensing to permit the orbital attempt. SpaceX had previously restricted Starship to suborbital trajectories to maximize public safety while gathering flight data.
The successful orbital insertion serves as a prerequisite for future lunar missions. The National Aeronautics and Space Administration (NASA) has contracted Starship as the initial crewed lander for the Artemis program, which targets establishing a base near the lunar south pole.
In a press release, SpaceX stated that achieving orbit allows the next phase of developing the vehicle “to be fully and rapidly reusable” to begin.
AirPro News analysis
We view the transition from suborbital testing to orbital payload delivery as a fundamental shift in Starship’s commercial viability. The successful deployment of Starlink V3 satellites demonstrates that the vehicle can now generate internal revenue and build out SpaceX’s proprietary infrastructure while continuing its development toward human spaceflight. The engine anomaly, while minor in the context of a successful orbital insertion, highlights the ongoing reliability challenges inherent in the 33-engine Super Heavy booster design. Consistent engine performance will be a primary focus for regulators before crewed Artemis missions can proceed.
Sources: SpaceX
Photo Credit: SpaceX
Space & Satellites
Rocket Lab Completes 4th Electron Launch in 25 Days
Rocket Lab deployed Synspective’s 13th StriX SAR satellite on Sept. 26, its 97th Electron mission and 18th of 2026.

Rocket Lab Corporation successfully deployed a StriX synthetic aperture radar satellite for Japanese Earth-monitoring operator Synspective on September 26, 2026, marking the launch provider’s fourth orbital mission in a 25-day span.
In a press release, Rocket Lab confirmed the “Owlright Owlright Owlright” mission lifted off from Launch Complex 1 in Mahia, New Zealand, at 12:39 p.m. New Zealand Standard Time (NZST), corresponding to September 25 in the United States. The flight represents the 97th overall launch of the Electron small-lift orbital rocket and the 18th mission conducted by the company in 2026.
Synspective constellation expansion
The mission successfully delivered the 13th StriX synthetic aperture radar (SAR) satellite into a 559-kilometer Low Earth Orbit (LEO). Rocket Lab has maintained a 100 percent mission success rate across all 13 dedicated satellite deployments for the Japanese constellation operator.
According to the company statement, Rocket Lab is contracted to execute 14 additional launches to complete the remainder of Synspective’s Earth-monitoring constellation by the end of the decade. The SAR technology utilized by Synspective allows for high-resolution Earth observation regardless of weather conditions or daylight.
Accelerated launch cadence
The September 26 flight continues a highly compressed launch schedule for the Electron vehicle. The mission was Rocket Lab’s fourth Electron flight within a 25-day window.
Previous recent launches included the “Owl By The Dozen” mission on September 19, 2026, and the “Owl Around The World” mission on September 2, 2026. Both of those flights also deployed StriX satellites for Synspective. An additional Electron mission took place between those flights on September 11, 2026.
AirPro News analysis
We note that Rocket Lab’s ability to execute four orbital launches in under a month demonstrates significant maturation in both manufacturing throughput and launch site operations at Launch Complex 1. Sustaining an 18-launch cadence through the third quarter of 2026 reinforces the Electron’s position in the small-lift market, particularly as constellation operators like Synspective require reliable, dedicated orbital insertion rather than rideshare compromises. The backlog of 14 remaining Synspective launches provides Rocket Lab with substantial baseline manifest stability through the end of the decade.
Sources: Rocket Lab Corporation
Photo Credit: Rocket Lab Corporation
Space & Satellites
ClearSpace and ESA Sign Phoenix GEO Life-Extension Contract
ClearSpace and ESA finalize a €100 million contract to develop the Phoenix geostationary satellite life-extension spacecraft.

ClearSpace and the European Space Agency (ESA) have finalized a contract to advance the Phoenix geostationary life-extension mission, moving the €100 million in-orbit servicing program into its next development phase.
Announced in a September 23, 2026 press release following the official signing the day prior, the agreement funds the development of a commercial spacecraft designed to dock with operational geostationary (GEO) satellites. The Phoenix vehicle will provide propulsion and attitude control to aging space assets, extending their operational lifespan and reducing the immediate need for replacement satellites.
Advancing European in-orbit servicing capabilities
The Phoenix mission is supported through ESA’s Advanced Research in Telecommunications Systems (ARTES) programme, with additional backing from the Luxembourg Space Agency (LSA). The project builds upon earlier development work funded by the Government of Luxembourg under the LuxIMPULSE initiative.
By developing a spacecraft capable of safely interfacing with existing GEO satellites, ClearSpace aims to establish a commercial market for satellite life extension. This capability allows operators to maximize the return on their orbital infrastructure while supporting responsible end-of-life disposal operations.
“ESA is dedicated to helping Europe build the capabilities needed for the next generation of in-orbit services. In cooperation with our Member States and European industry, we’re taking Phoenix to the next level by working to mature the dual-use technologies that will deliver clear benefits for sustainability, resilience, and the competitiveness of Europe’s space industry.”
Laurent Jaffart, ESA Director of Resilience, Navigation and Connectivity, noted that the partnership will strengthen the European position in the emerging orbital servicing market.
ClearSpace expands orbital sustainability portfolio
The Phoenix contract represents a significant expansion of ClearSpace’s operational scope beyond its foundational debris removal projects. The company is currently developing several European servicing missions, including the ESA-backed ClearSpace-1 active debris removal mission and the UK-focused CLEAR mission, which completed its second phase in May 2025.
ClearSpace is also preparing for PRELUDE, an in-orbit inspection mission targeting a 2027 launch. The addition of the Phoenix GEO life-extension vehicle positions the company to offer a broader suite of orbital interventions, from inspection and life extension to active debris removal.
ClearSpace CEO and co-founder Luc Piguet described the Phoenix program as the result of a shared ambition to make in-orbit servicing a practical capability for satellite operators.
“We are fully committed to the mission: working with ESA, its Member States, our industrial partners and our customers to build a safe, competitive and commercially sustainable European in-orbit servicing capability.”
AirPro News analysis
The €100 million Phoenix program highlights a critical shift in the space industry from disposable architecture to sustainable orbital management. We view the transition from pure debris removal to commercial life-extension services as a necessary step for the financial viability of in-orbit servicing companies. While debris removal relies heavily on government funding for environmental cleanup, GEO life extension offers a direct commercial value proposition to telecommunications operators. By keeping revenue-generating assets active longer, ClearSpace is tapping into a market where private operators are willing to pay for services, reducing the sector’s reliance on agency grants.
Sources: ClearSpace, European Space Agency
Photo Credit: ClearSpace
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