H2020Индивидуална стипендия2021–2023

ATTO-SPIE · ATTOsecond Spectro-microscopies for Photoresist Improvement and Efficacy

„Хоризонт 2020“ — Действия „Мария Склодовска-Кюри“

Период
2021-06-01 → 2023-05-31
Финансиране от ЕС
166 320 €
Участници
1
Схема
MSCA-IF

Линиите свързват координатора с партньорите.

Накратко на български

Химичните промени в специалните покрития (фоторезисти), предизвикани от екстремна ултравиолетова светлина при създаване на микрочипове, се анализират с нови методи за наблюдение. Разбирането на тези процеси помага за създаването на по-прецизни покрития за производство на по-бързи и мощни електронни устройства.

Този кратък обзор е генериран от изкуствен интелект

Кратко обяснение, генерирано от езиков модел по текста на CORDIS. Оригиналът е по-долу.

Резултати накратко

ATTOsecond Spectro-microscopies for Photoresist Improvement and Efficacy

After nearly 40s years of innovation, the semiconductor industry is currently experiencing one of its largest paradigmatic shifts in history as lithographic processes are adapting extreme ultraviolet (EUV) light at 13.5 nm for manufacturing the most advanced integrated circuits (ICs). In EUV lithography, ionizing radiation from a tin-plasma source is imaged onto a photoresist, whereby the exposure changes its chemical nature allowing for a nanoscale pattern to be printed. This pattern can then be revealed and modified by processing steps that eventually form the nano and microstructures in advanced ICs. Despite the industry’s adoption of EUV lithography, the fundamental processes governing the chemical modification of resists upon exposure to EUV light are largely unknown. This knowledge gap is exacerbated by the difficulty in measuring the complex radiation chemistry, which requires both chemical and electron sensitive spectroscopies that can resolve the EUV-induced changes in real-time and to date do not exist. If, however, the complex radiation chemistry could be resolved, this knowledge could be leveraged to yield improved photoresists that can print ever smaller patterns, leading to ever fast, more efficient, and more powerful devices. The goal of the ATTO-SPIE project was develop novel spectroscopies and microscopies that aimed at uncovering the critical processes occurring during EUV exposure in EUV photoresists. To this end, a multifaceted approach was formulated to shed light on three key interactions occurring during EUV exposure; 1) the initial absorption of EUV light by a photoresist, 2) the chemical transformations occurring during exposure, and 3) the kinetics of photoelectrons that are primarily responsible for driving the resist chemistry. These three thrusts formed the core of the three work packages (WPs) of the ATTO-SPIE project, with the ultimate objective to be able to relate these processes to the chemical nature of the photoresists themselves. During the 22-month duration of this project, ATTO-SPIE was able to achieve many of the sub-objectives and goals as described in the three WPs. New beamlines and metrology tools were developed that enabled measurements of EUV absorption at 13.5 nm (WP1), chemical composition tracked via infrared spectroscopy (IR) and chemical changes occurring on EUV exposure (WP2) and first measurements on photoemission to study the effects of valence band structure on the resulting photoelectrons (WP3). In WP1, the overall objective was to perform measurements of EUV absorption on photoresists and correlate the absorption values to their chemical composition, with the goal of increasing the amount of EUV light absorbed. The beamline and sample chamber constructed and commissioned as part of this WP enabled such measurements and the system is now currently being used to perform absorption measurements on material supplied by leading photoresist vendors. In WP2, the goal was to track EUV-induced chemical changes in real time using time-resolved EUV-pump, mid-IR probe spectroscopy, which has never been demonstrated before on a photoresist system. The output of WP2 resulted in a new beamline that is capable of making such measurements, and this capability will be utilized by researchers at imec to further the technique. The main objective of WP3 was to measure photoelectrons generated during EUV exposure. A tool was commissioned using 30 nm EUV light showing the capability of photoemission spectroscopy to uncover different electron kinetics based on photoresist composition, and moving forward 13.5 nm excitation will be used to mimic the conditions in an EUV lithography scanner.

Текст от CORDIS, на английски · Данни: CORDIS, © Европейски съюз

Цел на проекта

After more than 40 years of development, the semiconductor industry is currently experiencing a paradigm shift as it transitions from deep ultraviolet (UV) to extreme UV (EUV) lithography for high-volume manufacturing (HVM) of integrated circuits (ICs) to ensure further device scaling to the future technology nodes. However, integration of EUV lithographic scanners in HVM pipelines has been stymied by an incomplete knowledge of the in-situ photoresist radiochemistry that occurs during EUV exposure, which has prevented engineering of photoresists to reduce stochastic print failures and subsequent device failure rates. The proposed action, ATTOsecond Spectromicroscopies for Photoresist Improvement and Efficacy (ATTO-SPIE) will bridge this knowledge gap by developing and deploying spatiotemporal metrologies that can track the in-situ electro-chemical dynamics occurring during EUV exposure.ATTO-SPIE will capitalise on the Experienced Researcher’s (ER) expertise on the generation and use of attosecond EUV light for time-resolved spectroscopies, as well as the knowhow of an experienced team of complementary supervisors and a state-of-the-art attosecond metrology lab (AttoLab) located in a world-leading semiconductor R&D hub (IMEC) to develop new metrology techniques that will enable resolution of the EUV exposure mechanism. This ambitious aim will be accomplished via three thrusts: i) quantification of EUV exposure kinetics in photoresists, ii) ultrafast spectroscopies to track transient chemical dynamics of EUV exposure, and iii) in-situ spatiotemporal photoelectron microscopies, all of which will be key for unraveling the complexities of the EUV exposure mechanism. The results of ATTO-SPIE will not only provide new metrology tools for photoresist research, but also stimulate new avenues in ultrafast metrologies for the semiconductor industry, while also enhancing the career potential of the ER and increasing the current knowledge base of resist radiation chemistry.

Оригинален текст от CORDIS (на английски).

Участници

  • INTERUNIVERSITAIR MICRO-ELECTRONICA CENTRUM · LeuvenКоординаторБелгия

Връзки

Данни: CORDIS, © Европейски съюз