Akoustis Receives Wi-Fi 7 Design Win from Tier-1 Enterprise Wi-Fi AP Provider


  • Second Tier-1 Customer to Use Multiple Akoustis 5 GHz and 6 GHz Wi-Fi 7 Filters for a 4X4 MU-MIMO AP Platform
  • Has Received Prototype Orders to Enable Production Ramp in the Second Half Calendar Year 2024

Charlotte, N.C., Jan. 10, 2024 (GLOBE NEWSWIRE) -- Akoustis Technologies, Inc. (NASDAQ: AKTS) (“Akoustis” or the “Company”), an integrated device manufacturer (IDM) of patented bulk acoustic wave (BAW) high-band RF filters for mobile and other wireless applications, announced today that five of its patented XBAW® filters are being designed into a new quad-band enterprise Wi-Fi access point (AP) platform. 

The new design will use multiple Akoustis wideband and narrowband Wi-Fi XBAW® coexistence filters in the 5 and 6 GHz bands. These filters are being utilized in a 4X4 multi-user, multiple-in-multiple-out (MU-MIMO) quad-band Wi-Fi 7 AP router. Akoustis has received prototype orders from the customer to enable the production ramp in the second half of the calendar year 2024.

Jeff Shealy, founder and CEO of Akoustis, stated, “Akoustis continues to be a key player in the enterprise market attributed to our cutting-edge portfolio of high-performance micro-acoustic XBAW® filters.” Mr. Shealy continued, “We expect to ramp five Akoustis part numbers into this new Tier-1 enterprise customer’s quad-band architecture in the second half of calendar year 2024.” 

Akoustis maintains its momentum with robust demand and an expanding sales pipeline for its XBAW® filter products, in addition to its new XBAW®/SAW resonator and oscillator products, and semiconductor back-end services. The Company continues to secure new design wins in its target markets including Wi-Fi, 5G Infrastructure, Automotive and Defense, many of which are slated to ramp into production in the coming months.

About Akoustis Technologies, Inc.

Akoustis® (http://www.akoustis.com/) is a high-tech BAW RF filter solutions company that is pioneering next-generation materials science and MEMS wafer manufacturing to address the market requirements for improved RF filters — targeting higher bandwidth, higher operating frequencies and higher output power compared to legacy polycrystalline BAW technology. The Company utilizes its proprietary and patented XBAW® manufacturing process to produce bulk acoustic wave RF filters for mobile and other wireless markets, which facilitate signal acquisition and accelerate band performance between the antenna and digital back end. Superior performance is driven by the significant advances of poly-crystal, single-crystal, and other high purity piezoelectric materials and the resonator-filter process technology which enables optimal trade-offs between critical power, frequency and bandwidth performance specifications.

Akoustis plans to service the fast growing multi-billion-dollar RF filter market using its integrated device manufacturer (IDM) business model. The Company owns and operates a 125,000 sq. ft. ISO-9001:2015 registered commercial wafer-manufacturing facility located in Canandaigua, NY, which includes a class 100 / class 1000 cleanroom facility — tooled for 150-mm diameter wafers — for the design, development, fabrication and packaging of RF filters, MEMS and other semiconductor devices. Akoustis Technologies, Inc. is headquartered in the Piedmont technology corridor near Charlotte, North Carolina.

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These and other risks and uncertainties are described in more detail in the Risk Factors and Management’s Discussion and Analysis of Financial Condition and Results of Operations sections of the Company’s most recent Annual Report on Form 10-K and in subsequently filed Quarterly Reports on Form 10-Q. Considering these risks, uncertainties and assumptions, the forward-looking statements regarding future events and circumstances discussed in this document may not occur, and actual results could differ materially and adversely from those anticipated or implied in the forward-looking statements. You should not rely upon forward-looking statements as predictions of future events. 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