logo

Pioneering Ultra-Low Power Computing: A Disruptive Integrated Mechanics Paradigm

Sector: Aerospace & Defense • Location: United Kingdom

Source: EU Funding & Tenders Portal

Project
Forthcoming

Nanoelectromechanical (NEMS) switches offer 10 to 100 times less power consumption than conventional transistors, but their widespread adoption is hindered by challenges related to adhesion, electrical contact resistance (ECR), and in-operando property evolution. This project aims to address these issues by developing reliable interface coatings capable of withstanding the harsh conditions of NEMS

Project Information FAQ

Project Information

3 Q
The project “Pioneering Ultra-Low Power Computing: A Disruptive Integrated Mechanics Paradigm” is an infrastructure initiative in the Aerospace & Defense sector, located in United Kingdom. Taiyo aggregates data on it from EU Funding & Tenders Portal.

Want to explore the full details? View the full report

Participants

Sponsoring Agency

Obfuscated Data

Company

Obfuscated Data

Status

Original status

forthcoming

Taiyo status

Obfuscated Data

Taiyo last update

00-00-0000

Available timestamps

00-00-0000

Available timestamp type

Obfuscated Data

Contact

Contact name

Obfuscated Data

Phone

0000000000

Email

ObfuscatedData@email.com

Address

Obfuscated Data, Obfuscated data, obfuscated data, Obfuscated data

Description

Description

Nanoelectromechanical (NEMS) switches offer 10 to 100 times less power consumption than conventional transistors, but their widespread adoption is hindered by challenges related to adhesion, electrical contact resistance (ECR), and in-operando property evolution. This project aims to address these issues by developing reliable interface coatings capable of withstanding the harsh conditions of NEMS interface, such as high stresses, repetitive cycling, and Joule heating. Oxide formation on metal contacts is unavoidable, unlike tribopolymers. Though they are typically insulators, but can conduct electricity via electron dispersion and are proven effective in harsh environments. Oxides also offer advantages over metals, including high strength, low adhesion, and resistance to creep and fatigue, and can replace metal contacts completely. The proposal turns the liability into an advantage by considering oxides as a potential solution for NEMS switch interface. The project will use a materials genome search to select hard oxides with distinct conduction mechanisms—semimetals (RhO2, RuO2, TiOx), semiconductors (TiO2), and oxides with oxygen vacancies (Ta2Ox). Advanced characterization techniques such as TEM, XRD, and XPS will assess coating quality. To streamline the complex fabrication and testing process, an innovative in-situ AFM method with integrated plasma cleaning (to ensure clean environment), and controlled environment will be developed, enabling real-time monitoring of asperity interactions. This approach will directly link nano-asperity responses to actual NEMS interfaces. MD simulations will guide experiments, provide atomic-level insights, and develop semi-empirical prediction models for further development of NEMS switch architecture. This project aims to revolutionize energy-efficient computing by addressing tribo-chemo-electro-mechanics challenges at the NEMS interface, driving advancements in communication, transportation, sensing, medicine, and defense.

Original sub-sector

Obfuscated

Original Currency

USD

Original budget

000000000000000

Procurement method

Obfuscated Data

Budget

000000000000000

Location

Region

Obfuscated

Country

Obfuscated

State

Obfuscated Data

County

Obfuscated

Location

Obfuscated Data, Obfuscated data, obfuscated data, Obfuscated data

Source

Source reliability

High

Data quality score

100%

Source

Obfuscated Data

URL

obfuscated_data,obfuscateddata.com

More Details

Project Type

Obfuscated Data

Article Published Date

Obfuscated Data