{"id":null,"code":"IE00AG66","name":{"valueFi":"Energiankeräysteknologiat","valueEn":"Energy Harvesting Technologies","valueSv":""},"credits":5.0,"minCredits":5,"maxCredits":5,"tags":[],"createdAt":1790534916250,"contentList":[{"title":{"valueFi":"Osaamistavoitteet","valueEn":"Learning outcomes","valueSv":""},"content":{"valueFi":"- Students will understand the fundamental and advanced concepts and designs of self-sufficient, autonomous electronic systems for various sensing applications.\r\n- Students will learn the materials, devices and working mechanisms of different energy harvesters and corresponding self-powered systems.\r\n- Students will learn advanced energy storage options used for self-sufficient, autonomous sensing systems.\r\n- By learning this course, students may start to develop towards qualified designers and coordinators of R&D projects for energy harvesting systems in both academia and industry.\r\n\r\nAlso:\r\n- Students will be able to apply creative thinking and problem solving in their work to develop new knowledge and new procedures.\r\n- Students will be able to recognize the dependencies between dimensions of sustainability (social, ecological, economic, cultural) in their own field of study and able to assess the impacts of their own field's activities on them.\r\n- Students will be able to seek and combine expertise from different fields to find innovative solutions to global challenges as part of a working group.","valueEn":"- Students will understand the fundamental and advanced concepts and designs of self-sufficient, autonomous electronic systems for various sensing applications.\r\n- Students will learn the materials, devices and working mechanisms of different energy harvesters and corresponding self-powered systems.\r\n- Students will learn advanced energy storage options used for self-sufficient, autonomous sensing systems.\r\n- By learning this course, students may start to develop towards qualified designers and coordinators of R&D projects for energy harvesting systems in both academia and industry.\r\n\r\nAlso:\r\n- Students will be able to apply creative thinking and problem solving in their work to develop new knowledge and new procedures.\r\n- Students will be able to recognize the dependencies between dimensions of sustainability (social, ecological, economic, cultural) in their own field of study and able to assess the impacts of their own field's activities on them.\r\n- Students will be able to seek and combine expertise from different fields to find innovative solutions to global challenges as part of a working group.","valueSv":""}},{"title":{"valueFi":"Sisältö","valueEn":"Content","valueSv":""},"content":{"valueFi":"- Definitions and boundaries of power generation and energy harvesting\r\n- Materials for energy harvesting technologies\r\n- Solar, kinetic and thermal energy harvesting technologies\r\n- Structures and power sources for wireless sensor networks\r\n- Energy storage for wireless sensor networks\r\n- Hybrid and multi-source energy harvesting solutions\r\n- Industrial and practical use cases of energy harvesting systems\r\n- Guest lecture from industry for ultralow-power electronics","valueEn":"- Definitions and boundaries of power generation and energy harvesting\r\n- Materials for energy harvesting technologies\r\n- Solar, kinetic and thermal energy harvesting technologies\r\n- Structures and power sources for wireless sensor networks\r\n- Energy storage for wireless sensor networks\r\n- Hybrid and multi-source energy harvesting solutions\r\n- Industrial and practical use cases of energy harvesting systems\r\n- Guest lecture from industry for ultralow-power electronics","valueSv":""}},{"title":{"valueFi":"Suoritustavat","valueEn":"Study Methods","valueSv":""},"content":{"valueFi":"- Study is carried out online following the teacher's guidance (apart from the optional laboratory demonstrations). \r\n- Students must carry out self-study of learning materials assigned by the teachers. \r\n- In addition, students are expected to attend lectures and industrial guest lecture, and supervised study sessions.\r\n- The optional laboratory demonstrations are offered to students who wish to continue research in either companies or research institutes.  \r\n- To complete this course, students need to accomplish in tests, assignments, case study, and design work.\r\n- Study is carried out on the Moodle learning environment under the teachers' guidance. \r\n- Zoom meetings and video recordings will be the media for the course.","valueEn":"- Study is carried out online following the teacher's guidance (apart from the optional laboratory demonstrations). \r\n- Students must carry out self-study of learning materials assigned by the teachers. \r\n- In addition, students are expected to attend lectures and industrial guest lecture, and supervised study sessions.\r\n- The optional laboratory demonstrations are offered to students who wish to continue research in either companies or research institutes.  \r\n- To complete this course, students need to accomplish in tests, assignments, case study, and design work.\r\n- Study is carried out on the Moodle learning environment under the teachers' guidance. \r\n- Zoom meetings and video recordings will be the media for the course.","valueSv":""}},{"title":{"valueFi":"Toteutustavat","valueEn":"Teaching Methods","valueSv":""},"content":{"valueFi":"- This course implements the blended teaching method. \r\n- In general, the course will be implemented as ten lectures (including one industrial guest lecture), eight supervised study sessions, four in-lecture tests (optional), four assignments (optional), two laboratory demonstration sessions (optional), one case study (optional), and one design work (optional).\r\n- A student does not need to attend all these sessions. A selection of a part of the optional course elements will be sufficient for passing the course.  \r\n- The course consists of 40 hours of teaching and 95 hours of independent self-study. \r\n- The 40 hours of teaching contain ten lectures (2 hours per lecture), eight supervised study sessions (2 hours per session), and two laboratory demonstrations (2 hours per demonstration). The in-lecture tests are included in the lectures. \r\n- The 95 hours of independent self-study contain four assignments, one case study, and one design work. \r\n- The in-lecture tests, assignments, case study and design work constitute the assessment in this course.\r\n- In particular, the supervised study sessions are used for studying the basic knowledge in this course under the teachers' guidance. \r\n- The lectures are used for discussing advanced research and industrial topics in this course under the teachers' guidance. \r\n- The laboratory demonstrations are used for introducing the research environment and essential engineering topics in this course under the teachers' guidance. Note that students must attend the laboratory demonstrations in person. Laboratory demonstrations are not a part of the assessment.  \r\n- The in-lecture tests examine the students' acquisition of basic knowledge. \r\n- The assignments examine the students' understanding of advanced topics. \r\n- The case study examines the students' learning on industrial cases. \r\n- The design work examines the students' understanding on essential research questions.","valueEn":"- This course implements the blended teaching method. \r\n- In general, the course will be implemented as ten lectures (including one industrial guest lecture), eight supervised study sessions, four in-lecture tests (optional), four assignments (optional), two laboratory demonstration sessions (optional), one case study (optional), and one design work (optional).\r\n- A student does not need to attend all these sessions. A selection of a part of the optional course elements will be sufficient for passing the course.  \r\n- The course consists of 40 hours of teaching and 95 hours of independent self-study. \r\n- The 40 hours of teaching contain ten lectures (2 hours per lecture), eight supervised study sessions (2 hours per session), and two laboratory demonstrations (2 hours per demonstration). The in-lecture tests are included in the lectures. \r\n- The 95 hours of independent self-study contain four assignments, one case study, and one design work. \r\n- The in-lecture tests, assignments, case study and design work constitute the assessment in this course.\r\n- In particular, the supervised study sessions are used for studying the basic knowledge in this course under the teachers' guidance. \r\n- The lectures are used for discussing advanced research and industrial topics in this course under the teachers' guidance. \r\n- The laboratory demonstrations are used for introducing the research environment and essential engineering topics in this course under the teachers' guidance. Note that students must attend the laboratory demonstrations in person. Laboratory demonstrations are not a part of the assessment.  \r\n- The in-lecture tests examine the students' acquisition of basic knowledge. \r\n- The assignments examine the students' understanding of advanced topics. \r\n- The case study examines the students' learning on industrial cases. \r\n- The design work examines the students' understanding on essential research questions.","valueSv":""}},{"title":{"valueFi":"Oppimateriaalit","valueEn":"Learning material","valueSv":""},"content":{"valueFi":"<p>Book chapters provided on Moodle; Lecture slides; Academic papers and books recommended by the teachers. All learning materials and resources will be provided before or during the lecture.</p>","valueEn":"<p>Book chapters provided on Moodle; Lecture slides; Academic papers and books recommended by the teachers. All learning materials and resources will be provided before or during the lecture.</p>","valueSv":""}},{"title":{"valueFi":"Lisätiedot","valueEn":"Further information","valueSv":""},"content":{"valueFi":"Recommended courses related to this course:\r\n- 521215S Microelectronics project\r\n- 521210A Electronics Materials\r\n- 521181S Modern topics in telecommunications and radio engineering 11 - Principles and advanced techniques for RF power transfer and energy harvesting - Enabled wireless networks\r\n\r\nAjoitus  \r\nThe course is held in the period 3.  \r\n  \r\nKohderyhmä  \r\nMaster's level students, doctoral level students, and professionals.","valueEn":"Recommended courses related to this course:\r\n- 521215S Microelectronics project\r\n- 521210A Electronics Materials\r\n- 521181S Modern topics in telecommunications and radio engineering 11 - Principles and advanced techniques for RF power transfer and energy harvesting - Enabled wireless networks\r\n\r\nTiming  \r\nThe course is held in the period 3.  \r\n  \r\nTarget group  \r\nMaster's level students, doctoral level students, and professionals.","valueSv":""}},{"title":{"valueFi":"Kurssikirjallisuus","valueEn":"Literature","valueSv":""},"content":{"valueFi":"","valueEn":"","valueSv":""}},{"title":{"valueFi":"Esitietovaatimukset","valueEn":"Qualifications","valueSv":""},"content":{"valueFi":"- The students should have a Bachelor's or Master's degree in Physics, Chemistry, Electrical Engineering, Electronic Engineering, Mechanical Engineering, Materials Science, or Materials Engineering.\r\n- The students should also have a learning interest in topics of advanced materials, wireless sensing, Internet of Things (IoT), or smart city.","valueEn":"- The students should have a Bachelor's or Master's degree in Physics, Chemistry, Electrical Engineering, Electronic Engineering, Mechanical Engineering, Materials Science, or Materials Engineering.\r\n- The students should also have a learning interest in topics of advanced materials, wireless sensing, Internet of Things (IoT), or smart city.","valueSv":""}},{"title":{"valueFi":"Arviointiasteikko","valueEn":"Assessment scale","valueSv":""},"content":{"valueFi":"1-5/HYL","valueEn":"1-5/FAIL","valueSv":"1-5/FAIL"}},{"title":{"valueFi":"Arviointikriteerit","valueEn":"Assessment criteria","valueSv":""},"content":{"valueFi":"- Continuous assessment will be implemented.\r\n- No final exam.\r\n- This course provides ten assessment opportunities plus one retake opportunity, including four in-lecture tests, four assignments, one case study, one design work, and any of these chosen by the student for retake. \r\n- The student may choose to attend or skip any assessments. \r\n- To pass this course, a student needs to pass at least one of the 10 (+1) assessment opportunities.\r\n- Passing each assessment opportunity will grant a mark in the student's overall grade. Passing any five of these assessment opportunities will make the student reach the maximum grade (5/5). Therefore, passing 50% of the assessments will be sufficient to obtain a full grade.\r\n- Detailed assessment criteria will be explained during the course.\r\n- Read more about assessment criteria at the University of Oulu webpage.","valueEn":"- Continuous assessment will be implemented.\r\n- No final exam.\r\n- This course provides ten assessment opportunities plus one retake opportunity, including four in-lecture tests, four assignments, one case study, one design work, and any of these chosen by the student for retake. \r\n- The student may choose to attend or skip any assessments. \r\n- To pass this course, a student needs to pass at least one of the 10 (+1) assessment opportunities.\r\n- Passing each assessment opportunity will grant a mark in the student's overall grade. Passing any five of these assessment opportunities will make the student reach the maximum grade (5/5). Therefore, passing 50% of the assessments will be sufficient to obtain a full grade.\r\n- Detailed assessment criteria will be explained during the course.\r\n- Read more about assessment criteria at the University of Oulu webpage.","valueSv":""}},{"title":{"valueFi":"Arviointikriteerit 2","valueEn":"Evaluation criteria 2","valueSv":""},"content":{"valueFi":"","valueEn":"","valueSv":""}},{"title":{"valueFi":"Arviointikriteerit 3","valueEn":"Evaluation criteria 3","valueSv":""},"content":{"valueFi":"","valueEn":"","valueSv":""}},{"title":{"valueFi":"Arviointikriteerit 4","valueEn":"Evaluation criteria 4","valueSv":""},"content":{"valueFi":"","valueEn":"","valueSv":""}},{"title":{"valueFi":"Pääasiallinen opetuskieli","valueEn":"Primary Teaching Language","valueSv":""},"content":{"valueFi":"englanti","valueEn":"English","valueSv":"engelska"}},{"title":{"valueFi":"Taso","valueEn":"Level","valueSv":""},"content":{"valueFi":"Syventävät opinnot","valueEn":"Advanced Studies","valueSv":"Syventävät opinnot"}},{"title":{"valueFi":"Oppiaine","valueEn":"Subject","valueSv":""},"content":{"valueFi":"Sähkötekniikka","valueEn":"Electrical Engineering","valueSv":""}},{"title":{"valueFi":"Vastuuhenkilöt","valueEn":"Person in charge","valueSv":""},"content":{"valueFi":"Yang Bai","valueEn":"Yang Bai","valueSv":"Yang Bai"}},{"title":{"valueFi":"Luokittelu","valueEn":"Classification","valueSv":""},"content":{"valueFi":"","valueEn":"","valueSv":""}},{"title":{"valueFi":"Linkit","valueEn":"Links","valueSv":""},"content":{"valueFi":"","valueEn":"","valueSv":""}}]}