בואו להתרעננות אחרי המבחן עם חברת סיסקו

01 באוגוסט 2023, 11:00 
לובי בניין וולפסון הנדסה  
סיסקו בקמפוס

נתראה באירוע

סטונדטים.ות להנדסת חשמל, חברת סיסקו מגיעה לפגוש אתכם.ן בתום המבחן ב"אותות ומערכות".

זה הזמן להתרענן ולהפיג את הלחץ מייד לאחר הבחינה, עם נציגי ונציגות חברת סיסקו שישמחו לפגוש אתכם.ן ולשתף אודות הצעד הבא בבניית הקריירה.

מתי? יום שלישי 01.08.2023

איפה? לובי בניין וולפסון

מתי? 11:00

נתראה! 

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סמינר מחלקה של מיכל קולירוב - דינמיקת פירוק וספיחה של מיקרופלסטיק PTFE

08 בנובמבר 2023, 14:00 - 15:00 
וירטואלי  
0
סמינר מחלקה של מיכל קולירוב - דינמיקת פירוק וספיחה של מיקרופלסטיק PTFE

 

School of Mechanical Engineering Seminar
Wednesday 8.11.2023 at 14:00

ZOOM SEMINAR

Degradation and Sorption Dynamics of PTFE Microplastics

Michal Kotlyarov

M.Sc. student of Dr. Ines Zucker

 

 

Since the 19th century, plastic has become one of the most dominant materials used globally due to its versatility, chemical and thermal resistance, lightweight nature, and cost-effective production. However, the plastic revolution has led to a significant increase in plastic waste worldwide, which eventually finds its way into rivers and oceans. In aquatic environments, plastics undergo slow degradation processes, including photodegradation by sunlight, fragmentation by waves, and thermal wear. These degradation procedures result in the formation of microplastics, which have major environmental implications. Such implications include microplastic role as sink and source of environmental pollutants (trace organic compounds) and potential toxic effect towards living forms.

Fluorine-containing polymers like polytetrafluoroethylene (PTFE) form the basis of some of the most stable and inert plastics available. Although PTFE is considered resistant to natural weathering, it can still degrade over time, during which it may act as a source and release harmful polyfluorinated alkyl substances (PFASs) or act as vectors for other co-existing toxic trace organic compounds, facilitating their accumulation in various biological organisms. In light of the recent evidence of PTFE presence in the environment and their potential to adsorb environmental chemicals like arsenic, there is a need to shed light on both degradation mechanisms and implications of PTFE in the aquatic environment.

This research aims to explore two critical environmental concerns: (i) the decomposition process of PTFE particles and the conditions driving it, and (ii) the sorption potential of trace organic compounds onto PTFE microparticles vs potential release of organic compounds from PTFE particles during weathering procedure. By understanding these processes, the study seeks to enhance risk assessments related to emerging fluorinated environmental contaminants and contribute to strategies for mitigating contamination to safeguard human sustainability and well-being.

 

https://tau-ac-il.zoom.us/j/86497933118

                                                                                  

 

מדענים מובילים בתחום הבינה המלאכותית ובכירים בתעשייה, פרסמו מכתב המזהיר מפני סכנות הבינה המלאכותית. נשאלת השאלה האם זו אזהרה רגילה או שישנה סיבה לדאגה

Chip Design Engineer

What you'll be doing:

  • Work in a combined design and verification team which develops some of the switch silicon core units specializing in quality of service.

DevOps Team Lead

Responsibilities

What will you do as a DevOps Team lead?

מהנדס אופטיקה

Responsibilities

You’ll be joining the optics team: 

  • The optics team is responsible for the whole optical path of the Nova tools starting from the light sources, through core optical components and to the sensors

  • The optical path of Nova tools consists of diverse high-end elements from different optics branches providing state-of-the-art performance at the system level.

מהנדס מכונות לצוות הפיתוח לתפקיד מאתגר ומגוון

מחלקת פיתוח מנועי סילון בחברת מנועי בית שמש מחפשת מהנדס מכונות להצטרף לצוות הפיתוח לתפקיד מאתגר ומגוון 

תיאור משרה:

תכן מכני של מנועי סילון ואביזריהן 

במחקר, שנערך בהובלת חוקרים מאוניברסיטת תל אביב, התגלה מנוע כימי "טבעי", שיכול לשאת על המים עד פי 40 ממשקלו

Memristive Devices: Fabrication, Modeling, and Electrical Characterization of HfOx Devices - סמינר מחלקה פיסיקלית

סמינר זה יחשב כסמינר שמיעה לתלמידי תואר שני

26 ביולי 2023, 16:00 
 
Memristive Devices: Fabrication, Modeling, and Electrical Characterization of HfOx Devices  - סמינר מחלקה פיסיקלית

 

 

סמינר זה יחשב כסמינר שמיעה לתלמידי תואר שני

You are invited to attend a lecture on Wednesday, July 26, 2023, at 16:00 pm

 

Join Zoom Meeting

https://tau-ac-il.zoom.us/j/82866941430?pwd=aFZjcUI2YWl6bzl0LzBTU1djVU5Rdz09

 

Meeting ID: 828 6694 1430

Passcode: 924879

 

Memristive Devices: Fabrication, Modeling, and Electrical Characterization of HfOx Devices

 

By:

 

Prajwal Prakash

M.Sc. student under the supervision of Prof. Arie Ruzin

 

Abstract

 

Nonvolatile memory, particularly memristor-based nonvolatile memory, holds great potential for advancing computer technology. There is stiff competition among leading research groups to develop alternatives to DRAM (Dynamic Random Access Memory) and NAND Flash. According to the semiconductor industry, the newly developed memory technology with memristor will be faster, denser, and more durable than existing memory.

This research addresses fundamental scientific and practical technological aspects in developing metal-oxide-metal devices for nonvolatile memory applications. The objective is to gain a comprehensive understanding of the switching mechanisms in these devices, particularly the filamentary nature of the switching process. The assumption is that the switching is controlled by the creation and destruction of conductive channels, which will be verified under different electrical conditions. In the technological aspect of creating dense memory, the crossbar architecture is the most promising. Devices using this type of architecture must have a high level of nonlinearity in their current-voltage characteristics.

This work, HfO2 thin films were synthesized, and their memristive behavior is seen through the ON/OFF states in a switching cycle. Key contributions include controlled synthesis of hafnium oxide, fabrication of Ti/Pt/HfO2/Au memristor using novel architectures (single device or stand-alone element and crossbar arrays), and its electrical characterization. In this work, various fabrication procedures were implemented to fabricate arrays of memristors on a chip. The memristive characteristics were studied for HfOx-based memristors. Two different-sized devices, 10×10 µm2 and 100×100 µm2 (denoted as CB10 and CB100, respectively), were fabricated using magnetron sputtering. The primary objective is to develop a characterization methodology that optimizes the measurement parameters for achieving moderate to high ON/OFF ratios and bipolar switching in all the fabricated memristor devices. A physical model based on experimental results will also be developed to better understand the device’s behavior. The research also aims to examine the influence of current compliance on the electroforming process and device-switching mechanisms.  Bipolar memristive characteristics were obtained and were consistent with the combined electric field and temperature-dependent oxygen migration in the filament formation mechanism. The contact geometry is shown to play an important role in the device characteristics. The devices exhibited moderate to high ON/OFF ratios, retention, and endurance.

This research provides insights into the electroforming process and electrical characterization of the HfOx-based memristors. It enables the fabrication of reliable devices with controlled electroforming behavior to explore new possibilities and expand their practical implementation in various fields.

 

 

Cavity Continuum - סמינר מחלקה פיסיקלית

סמינר זה יחשב כסמינר שמיעה לתלמידי תואר שני

25 ביולי 2023, 15:00 
Room 011, Kitot Building  
Cavity Continuum  - סמינר מחלקה פיסיקלית

 

 

סמינר זה יחשב כסמינר שמיעה לתלמידי תואר שני

 

You are invited to attend a lecture on Tuesday, July 25th, 2023

15:00

 

Room 011, Kitot Building

 

Cavity Continuum

 

By:

Fan Cheng

M.Sc. student under the supervision of Prof. Tal Carmon

 

Abstract

 

   We experimentally demonstrate large arrays of coupled whispering-gallery resonators. By fluorescently marking the ensemble modes, we map their spatial structures along with their spectral distribution.  Our fluorescent micrographs reveal that light can reach distant resonators in various ways, such as while passing through dark gaps, resonator groups, or resonator lines. Our practically infinite periodic array of resonators with quality factor [Q] exceeding 107 might impact a new type of distributed sensors or metamaterial for nonlinear optics and lasers using a cavity continuum that is a distributed material but has high-Q resonators as its unit cells.

 

 

עמודים

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