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Since November 2022
Instructor since November 2022
Photonic Circuit Design I: Basic Methods and Applications
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From 44 C$ /h
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Photonic Circuit Design is currently surfacing as the most prominent candidate for beyond-Moore circuit design paradigms. In this course, we will cover the basic laws of Electromagnetics, Optics, Optical Resonators, Waveguide analyses, Effective Index Method (EIM), Coupled Mode Theory (CMT), and Eigenmode Expansion Method (EME). In light of these methods, we will cover Y-branches and Mach-Zehnder Interferometers (MZM).
Extra information
Installing the software required is your responsibility
Location
location type icon
Online from Egypt
About Me
- M.Sc candidate @ Zewail City - Photonics Engineering
- B.Sc., Nanotechnology, and Nanoelectronics Engineering @ Zewail City (Cum Laude).
- TA @ Nanotechnology, and Nanoelectronics Engineering @ Zewail City
- RA @ Center for Photonics and Smart Materials (CPSM)
Education
- M.Sc candidate @ Zewail City - Photonics Engineering
- B.Sc., Nanotechnology, and Nanoelectronics Engineering @ Zewail City (Cum Laude).
- TA @ Nanotechnology, and Nanoelectronics Engineering @ Zewail City
- RA @ Center for Photonics and Smart Materials (CPSM)
Experience / Qualifications
3 Years of Teaching at Zewail City and the American University in Cairo (AUC) along with teaching online through Chegg and Course Hero
Age
Adults (18-64 years old)
Student level
Beginner
Intermediate
Duration
60 minutes
The class is taught in
English
Availability of a typical week
(GMT -04:00)
New York
at teacher icon
Online via webcam
Mon
Tue
Wed
Thu
Fri
Sat
Sun
00-04
04-08
08-12
12-16
16-20
20-24
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How lessons work

Send me your lecture notes, assignment brief, lab sheet or the circuit that refuses to work, and I plan the session around it before we meet. Nothing generic.

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Digital Logic Design

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it pushes disciplined, real-world technical thinking.

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what the components and systems are actually doing

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BEFORE WE START, FIT CHECK
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Lesson title:
General Physics for University Students (Physics 101 & 102) - The Complete Guide to Mastering Concepts, Solving Complex Problems, and Guaranteeing A+ Exams

Detailed lesson description:
Do you feel that the general physics course is an obstacle to your academic achievement? Do you find it difficult to connect theoretical laws and apply them to complex exam problems in English? Do you suffer from time constraints during exams or difficulty in extracting data correctly?

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---

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---

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---

Advantages of the teaching method and services provided in this course:

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Overcoming the obstacle of multiple choice (MCQs): Introducing critical thinking strategies, quick problem-solving, and techniques for eliminating incorrect answers to deal with time pressure in electronic and paper tests.
* Support and follow-up: Answering student inquiries, explaining school and university assignments (Assignments & Homeworks), clarifying weaknesses and addressing them immediately.

Who is this course for?
This course is aimed at all first and second year students in engineering colleges (mechanical, electrical, civil, aviation, computer), science college students (physics, mathematics, chemistry), technological and technical college students, and every student who seeks to break the barrier of fear of physics and reach the top by obtaining the highest grade.

Keywords (Tags):
Physics 101, Physics 102, General Physics, University Physics, Physics 101, Physics 102, Mechanics, Electricity and Magnetism, Engineering, University, Physics Exams, Physics Problem Solving, Past Papers, Calculus-based Physics, Coulomb, Newton, Kirchhoff, Diving, Piots Savar, EmSAT, Physics Tests, University Physics Explanation, Physics Questions and Answers, Physics Homework, General Physics I, General Physics II
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What we cover

Circuit analysis in DC and AC, including Kirchhoff's laws, Thevenin and Norton equivalents, superposition, phasors and AC power. Operational amplifiers and analogue electronics. Digital electronics and logic design. Signals and Systems and Digital Signal Processing, covering Fourier analysis, Laplace and z transforms, sampling and filter design. Control systems, transfer functions, root locus, Bode plots, stability and PID tuning. Semiconductor devices and power electronics. Embedded systems and microcontroller programming in C with Arduino, ESP32 and PIC. Simulation and tooling including MATLAB, Simulink, LTspice, Multisim and Proteus. Circuit board design in KiCAD. Lab reports, coursework, project supervision and exam technique.

How lessons work

Send me your lecture notes, assignment brief, lab sheet or the circuit that refuses to work, and I plan the session around it before we meet. Nothing generic.

Most students are stuck on one or two specific ideas rather than a whole module, so the first job is finding out which. Then we work through it with proper worked examples and real circuit diagrams, and I hand the problem back to you while I watch and correct, because you learn far more doing it than watching me do it.

If the real gap is the maths underneath a topic, complex numbers, phasors, Laplace transforms, we go back and fix that first, because everything after it depends on it.

You finish each session with annotated notes and a clear next step, and you can message me between lessons with questions.

Practical details

Lessons are online over Google Meet or Zoom, with screen sharing and a shared whiteboard so we can draw circuits and work through derivations together. Sessions run 60 or 90 minutes. Evenings and weekends available across European time zones.

Tell me your module, your deadline and exactly where you are stuck, and I will come back with a plan for the first session.
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Hello everyone and have a nice day,

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I offer practical and simplified training that starts from the basics of electronics and goes up to the design and programming of smart home and Internet of Things systems, with theoretical explanations and practical applications on real circuits and digital simulations.

Course content:
1. Fundamentals of Electronics

Identifying different electronic components: resistors, capacitors, diodes, transistors, and sensors.

Understanding correct electrical connections

Reading electronic circuits and working with breadboards

2. What is Arduino? And how do we program it?

Introduction to Arduino boards

Explanation of the C++ programming language used with Arduino

How to download code and test projects step by step

3. Design and programming of smart home circuits

Connecting sensors and smart switches

Lighting and electrical appliance control

Designing a system that controls the home using a mobile phone

Introduction to the Internet of Things (IoT) and its connection to home control

4. Controlling the home from a mobile phone

Creating simple control interfaces

Connect using Wi-Fi or Bluetooth

Remote device operation and sensor monitoring

5. Practical training

Real Arduino circuit experiment

Using simulation software such as Tinkercad and Proteus

Practical projects ready for implementation

Who is this course for?

Beginners in the field of electronics

Students interested in Arduino programming

Who wants to create a smart home project?

Anyone who wants to understand how electronics work in a simple and practical way
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HI, I’m Ali, an expert tutor in Electronics and Electrical Engineering with strong foundations in circuit design, simulation, and practical hardware systems.

Online lessons

If Electricity and Electronics make sense in class, but everything starts falling apart when the question becomes a real circuit, a phasor problem, an RLC response, or a simulation task, you are not alone.

Most students do not struggle because they are not capable.
They struggle because nobody has shown them how to think through the physical system properly, choose the right troubleshooting method, and present the solution with confidence.

That is exactly where I help.

WHAT MAKES MY TEACHING DIFFERENT
I do not teach Electrical Engineering, Electronics, and Circuit Theory as isolated topics.

I teach them as one connected system.

With my Electronics Engineering background and extensive hands-on experience in hardware systems design, my approach is always:

Model & Simulate

Solve & Optimise

Verify (Hardware/Software)

Improve & Troubleshoot

This means you do not just memorise formulas for one test. You learn how to approach unfamiliar engineering problems, schematic designs, and hardware constraints with structure, logic, and control.

WHO THIS PROFILE IS FOR
This profile is built for you if:

you understand parts of the topic, but struggle to connect theory to practical hardware implementation under pressure

you can follow solved textbook examples, but get stuck when starting circuit designs or simulations alone

your circuit setup, phasors, Laplace work, or PCB layouts break down mid-solution

you need technical help that is clear, structured, and highly relevant to your engineering modules or lab projects

you want a practical engineering method, not vague motivation

you want to become independent, mastering industry-standard tools instead of relying on memorised steps

WHAT YOU WILL ACTUALLY IMPROVE
I focus on the parts of Electronics and Electrical Engineering that usually decide whether a student feels in control, or completely stuck.

That includes improving how you handle:

Electrical Circuits, Mesh/Nodal Circuit Analysis, AC and DC Circuits

Phasors, complex impedance, and RLC Circuits

Circuit Simulations (Proteus, LTspice, Multisim, KiCad, Altium Designer)

Hardware Design, PCB Layout, and routing constraints

Analogue and Digital Electronics, Electronic Devices, and VLSI/SoC concepts

Signals & Systems, Signal Processing, and Control Systems block diagrams

Digital Logic Design (DLD), Boolean Algebra, K-Maps, and State Machines (FSM)

Embedded Systems, microcontrollers, and integrating Machine Learning into hardware

Applied Mathematics for Engineers, Calculus, Differential Equations, Fourier Analysis, and Laplace Transforms

WHAT I HELP STUDENTS DO
Most students come to me because they want more than a basic theoretical explanation.

They want to be able to:

read the engineering question or schematic properly

identify what the circuit or system is actually doing

choose the correct analysis method faster

set up the software simulations cleanly and debug errors

avoid common hardware and design mistakes

finish with a working layout or solution they can justify

SUBJECT AREAS I SUPPORT
My main subject support is built around:

Electronics Engineering

Circuit Design & Simulation

Electrical Engineering Foundations

Digital Logic Design

Within that, I regularly position lessons around high-value areas such as:

Circuit Analysis (AC/DC) & Phasors

PCB Layout & Hardware Prototyping

Embedded Systems & Microcontrollers

Control Systems & Signal Processing

Digital Logic Design & Digital Systems

Solid State Devices & VLSI Concepts

For students on broader technical pathways (like Mechatronics, Robotics, or Automation), I can also support connected areas like programming, sensor integration, and machine learning applications when they are part of your course demands.

HOW MY ENGINEERING BACKGROUND HELPS
My Electronics Engineering background, combined with practical industry exposure in testing labs, grid stations, and professional freelance PCB design, is useful here for one reason:

it pushes disciplined, real-world technical thinking.

Instead of rushing to formulas, I train students to understand the circuit model and software verification first. That changes everything.

It helps you see:

what the components and systems are actually doing

why one simulation tool or design choice fits better than another

where errors and noise usually enter the solution

how to verify the hardware design before moving to fabrication

That is the difference between copying worked examples and actually understanding engineering.

HOW THE SUPPORT FEELS
Students usually work well with me because the sessions are:

structured, calm, and technical

practical and focused on real design improvement

You do not get vague advice. You get direction, software walkthroughs, and a debugging method you can keep using after the lesson ends. This is especially useful for students preparing for exams, difficult university modules, lab tasks, or Final Year Projects (FYPs).

WHY THIS APPROACH WORKS
A lot of students spend hours watching tutorials, but still cannot design a circuit or solve questions independently. Passive exposure is not the same as technical control.

My goal is to make you someone who can start the question or design with confidence, move through the layout or working without panicking, and build stronger engineering performance over time.

BEFORE WE START, FIT CHECK
To make the first lesson useful from the start, send:

Level / Degree Course

Exam board or university module guidelines

Exam date, project deadline, or timeline

3 priority topics or software tools you want to master

The exact point where you get stuck

1 to 3 questions, project briefs, or screenshots
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This hands-on training pathway is designed to help students kickstart any project, specifically tailored for OT labs and industrial applications. Starting from absolute scratch, students will build a strong foundation in Python programming through practical, industry-relevant concepts.

Curriculum Outline: |
01 - Python Environment Setup & Basics |
02 - Python Variables, Numbers, Bytes & Hex |
03 - Control Flow Logic Functions |
04 - Data Structures (Lists, Tuples, Dictionaries & Sets) |
05 - String Formatting, Comprehensions & Exception Handling |
06 - File IO, Pathlib & Context Managers |
07 - Object-Oriented Programming (Classes & OOP) |
08 - Standard Library, Modules & Networking Basics |

Assessment & Evaluation:
Students will take a mini-test after the completion of each module. Additionally, an Audit & Performance Evaluation report will be sent following the tests.
Duration:
5 days to 15 days (depending on the pace of the cohort)
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Electricity Teacher - Live Lessons from a Real Classroom

TIRED OF CLASSES IN FRONT OF A BLANK SHEET OF PAPER?

I give my lessons LIVE from a classroom with a blackboard and chalk.
Like at school, but with Google Meet at home.

FOR WHO ?
MIDDLE SCHOOL / HIGH SCHOOL: Circuits, laws, safety, reading diagrams
Vocational Baccalaureate: Power diagram, control diagram, wiring, installation
BTS: Industrial diagrams, motor starting, relays and contactors

MY METHOD:
We're working on YOUR exercises. I'll explain them to you step by step on the board.
Clear and concrete explanations with examples from construction sites.
You see everything I write and you leave with photos from the course.

HOW DOES IT WORK?
100% online course via Google Meet.
Professional quality: Sound + Image + Visible painting.
Opening hours: Evenings and weekends, French time.

Levels: Beginner to Advanced. First lesson to try it out.
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Electrical engineering is a current trend and upcoming future necessity for people day to day life. so I will teach about how our electrical engineering help our day to day life and it remain use full and safe to our environment and people . People of this world must know about safety measures of electrical system. Also I will teach how to protect our environment and nature by using electrical engineering concept. The above content what I mentioned is learned by future students and taught by me.
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Physics is a fascinating subject that helps us understand how the world around us works. As an experienced scientist with a passion for teaching and sharing science, I enjoy helping students develop a deeper and more intuitive understanding of physics. My lessons cover topics including classical mechanics, optics, electromagnetism, quantum mechanics, and quantum optics, and can be tailored to your level and learning goals. Whether you are preparing for an exam, studying at university, or simply curious about physics, I focus on clear explanations, problem-solving, and making even challenging concepts easier to understand.
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Electronic, communication systems,electromagnetic fields , embedded system, digital electronic, digital signal processing, digital image processing,optical communication, signals and systems,applied electronics, microwave engineering,TLN,radio engineering
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Lesson title:
General Physics for University Students (Physics 101 & 102) - The Complete Guide to Mastering Concepts, Solving Complex Problems, and Guaranteeing A+ Exams

Detailed lesson description:
Do you feel that the general physics course is an obstacle to your academic achievement? Do you find it difficult to connect theoretical laws and apply them to complex exam problems in English? Do you suffer from time constraints during exams or difficulty in extracting data correctly?

Don't worry! This comprehensive and intensive course is specifically designed to be your first and complete reference for passing the General Physics I & II courses with the highest distinction (A+), and turning physics from a source of anxiety into a strength in your GPA.

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First: Topics covered in the General Physics 1 course (Physics 101 - Mechanics and Heat):

1. Vectors and Physical Quantities:
Understanding scalar and vector quantities and their applications.
- Adding and subtracting vectors structurally and computationally (Vector Addition & Components).
- Standard multiplication and cross product (Dot Product & Cross Product) and their direct uses.

2. Movement in one dimension and two dimensions (Kinematics in 1D & 2D):
- Equations of motion with constant acceleration.
- Free Fall & Projectile Motion.
Uniform Circular Motion and Determination of Acquired Acceleration Directions.

3. Newton's Laws of Motion and their applications:
- Newton's first, second and third laws and the formulation of the free-body diagram.
- Applying forces to different axes and dismantling the vehicles.
- Dealing with static and kinetic friction forces, inclined surfaces, and suspended masses.

4. Work, Energy & Conservation of Energy:
- Calculating the work done by constant and variable forces.
- Kinetic and Potential Energy.
- The principle of conservation of mechanical energy and its applications in the presence and absence of friction.

5. Linear Momentum & Collisions:
- Definition of momentum and calculation of impulse (Momentum & Impulse).
- Elastic and inelastic collisions in one dimension and two dimensions (Elastic & Inelastic Collisions).
- Calculating the center of mass for systems and particle systems.

6. Rotational Motion and Torque:
- Speed, angular acceleration, and the relationship between them and linear quantities.
- Bending moment, shear moment, and inertia moment.
- Applying Newton’s second law to rotational motion and the conservation of angular momentum.

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Second: Topics covered in the General Physics 2 course (Physics 102 - Electricity and Magnetism):

1. Electric Charge and Coulomb's Law:
- Properties of electric charges and the laws of attraction and repulsion.
- Calculating the net electric force resulting from a group of point charges (Superposition Principle).

2. Electric Field and Gauss's Law:
- Calculating the electric field strength for point charges and continuous charge distributions.
- Electric flux and applications of Digges' law to spherical, cylindrical and planar surfaces.

3. Electrical Potential and Potential Energy:
- The difference in electrical potential and the work done to move the charges.
- Calculating the electrical potential resulting from the different distributions of conductive and insulating surfaces.

4. Capacitors and Dielectrics:
- Capacitor capacity and methods of connecting capacitors in series and parallel (Series & Parallel Capacitors).
- Energy stored in the electric field and the effect of introducing dielectric materials on capacitance and voltage.

5. Electric current and electrical circuits (Current, Resistance & DC Circuits):
- Ohm's Law and the difference between resistance and resistivity.
- Analyzing complex electrical circuits using Kirchhoff's Voltage & Current Laws.
- Capacitor charging and discharging circuits (RC Circuits).

6. Magnetic Field and Magnetic Forces:
- The magnetic force acting on moving charges and wires through which a current flows (Lorentz Force).
- The movement of charges in uniform magnetic fields.
- Biot-Savart Law and Ampere's Law for calculating magnetic fields.

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Advantages of the teaching method and services provided in this course:

* Simplifying and deconstructing concepts: Transforming complex laws and dry theories into simplified ideas explained in Arabic while maintaining complete directness and professionalism in dealing with English terminology.
* Exam-style training: Solving hundreds of problems and concepts ranging from beginner to advanced levels and levels for outstanding students.
* Solving Past Papers: A comprehensive review of past years’ questions from various universities and coverage of midterm and final exam concepts.
Overcoming the obstacle of multiple choice (MCQs): Introducing critical thinking strategies, quick problem-solving, and techniques for eliminating incorrect answers to deal with time pressure in electronic and paper tests.
* Support and follow-up: Answering student inquiries, explaining school and university assignments (Assignments & Homeworks), clarifying weaknesses and addressing them immediately.

Who is this course for?
This course is aimed at all first and second year students in engineering colleges (mechanical, electrical, civil, aviation, computer), science college students (physics, mathematics, chemistry), technological and technical college students, and every student who seeks to break the barrier of fear of physics and reach the top by obtaining the highest grade.

Keywords (Tags):
Physics 101, Physics 102, General Physics, University Physics, Physics 101, Physics 102, Mechanics, Electricity and Magnetism, Engineering, University, Physics Exams, Physics Problem Solving, Past Papers, Calculus-based Physics, Coulomb, Newton, Kirchhoff, Diving, Piots Savar, EmSAT, Physics Tests, University Physics Explanation, Physics Questions and Answers, Physics Homework, General Physics I, General Physics II
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In this 30-minute class, we will understand the two core components of a microprocessor: the ALU (Arithmetic Logic Unit) and the Control Unit. I will explain their structure, functions, and how they work together to execute instructions, using simple diagrams and practical examples. The goal is to build a clear understanding of how a microprocessor processes and controls data.
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