Vala Can Aşkan, Seda Kol, Nihan Aydemir, Ahmet Yavuz Oral
{"title":"热电应用中激光诱导石墨烯的尿素辅助n型转换","authors":"Vala Can Aşkan, Seda Kol, Nihan Aydemir, Ahmet Yavuz Oral","doi":"10.1007/s42823-026-01071-0","DOIUrl":null,"url":null,"abstract":"<div><p>Thermoelectric materials enable direct heat-to-electricity conversion. They have gained increasing interest in sustainable and wearable energy-harvesting systems. However, progress in flexible thermoelectric devices remains limited by the shortage of high-performance n-type organic materials, hindering the development of efficient p–n complementary modules. Laser-induced graphene (LIG) has attracted considerable attention for thermoelectric applications due to its high electrical conductivity, scalable fabrication, and compatibility with flexible substrates. However, LIG produced from polyimide typically exhibits p-type behavior, which limits its applicability in thermoelectric modules requiring complementary n-type materials. In this study, we address this limitation by introducing a simple and scalable urea-assisted strategy to convert p-type LIG into n-type LIG through nitrogen doping during the laser-induced graphitization process. First, we have fabricated LIG by direct laser writing on polyimide and subsequently treated with 5 and 10 wt% urea solutions, followed by mild annealing. Subsequent structural and chemical characterizations confirmed effective nitrogen incorporation, dominated by graphitic-N species, while preserving the porous 3D LIG network. Thermoelectric measurements revealed enhanced electrical conductivity (up to 1120 S/m) and a clear p-to-n transition, as evidenced by negative Seebeck coefficients in urea-treated films. The optimized LIG-10 N sample delivered the highest thermoelectric performance, reaching a power factor of 0.136 µW m⁻¹ K⁻² at 60 °C. Overall, this work provides a practical route for engineering n-type LIG, supporting the development of flexible thermoelectric modules for wearable and low-power energy-harvesting applications.</p><h3>Graphical Abstract</h3><div><figure><div><div><picture><source><img></source></picture><span>The alternative text for this image may have been generated using AI.</span></div></div></figure></div></div>","PeriodicalId":506,"journal":{"name":"Carbon Letters","volume":"36 3","pages":"1417 - 1434"},"PeriodicalIF":6.2000,"publicationDate":"2026-05-05","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"https://link.springer.com/content/pdf/10.1007/s42823-026-01071-0.pdf","citationCount":"0","resultStr":"{\"title\":\"Urea-assisted N-type conversion of laser-induced graphene for thermoelectric applications\",\"authors\":\"Vala Can Aşkan, Seda Kol, Nihan Aydemir, Ahmet Yavuz Oral\",\"doi\":\"10.1007/s42823-026-01071-0\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><p>Thermoelectric materials enable direct heat-to-electricity conversion. They have gained increasing interest in sustainable and wearable energy-harvesting systems. However, progress in flexible thermoelectric devices remains limited by the shortage of high-performance n-type organic materials, hindering the development of efficient p–n complementary modules. Laser-induced graphene (LIG) has attracted considerable attention for thermoelectric applications due to its high electrical conductivity, scalable fabrication, and compatibility with flexible substrates. However, LIG produced from polyimide typically exhibits p-type behavior, which limits its applicability in thermoelectric modules requiring complementary n-type materials. In this study, we address this limitation by introducing a simple and scalable urea-assisted strategy to convert p-type LIG into n-type LIG through nitrogen doping during the laser-induced graphitization process. First, we have fabricated LIG by direct laser writing on polyimide and subsequently treated with 5 and 10 wt% urea solutions, followed by mild annealing. Subsequent structural and chemical characterizations confirmed effective nitrogen incorporation, dominated by graphitic-N species, while preserving the porous 3D LIG network. Thermoelectric measurements revealed enhanced electrical conductivity (up to 1120 S/m) and a clear p-to-n transition, as evidenced by negative Seebeck coefficients in urea-treated films. The optimized LIG-10 N sample delivered the highest thermoelectric performance, reaching a power factor of 0.136 µW m⁻¹ K⁻² at 60 °C. Overall, this work provides a practical route for engineering n-type LIG, supporting the development of flexible thermoelectric modules for wearable and low-power energy-harvesting applications.</p><h3>Graphical Abstract</h3><div><figure><div><div><picture><source><img></source></picture><span>The alternative text for this image may have been generated using AI.</span></div></div></figure></div></div>\",\"PeriodicalId\":506,\"journal\":{\"name\":\"Carbon Letters\",\"volume\":\"36 3\",\"pages\":\"1417 - 1434\"},\"PeriodicalIF\":6.2000,\"publicationDate\":\"2026-05-05\",\"publicationTypes\":\"Journal Article\",\"fieldsOfStudy\":null,\"isOpenAccess\":false,\"openAccessPdf\":\"https://link.springer.com/content/pdf/10.1007/s42823-026-01071-0.pdf\",\"citationCount\":\"0\",\"resultStr\":null,\"platform\":\"Semanticscholar\",\"paperid\":null,\"PeriodicalName\":\"Carbon Letters\",\"FirstCategoryId\":\"88\",\"ListUrlMain\":\"https://link.springer.com/article/10.1007/s42823-026-01071-0\",\"RegionNum\":3,\"RegionCategory\":\"材料科学\",\"ArticlePicture\":[],\"TitleCN\":null,\"AbstractTextCN\":null,\"PMCID\":null,\"EPubDate\":\"\",\"PubModel\":\"\",\"JCR\":\"Q2\",\"JCRName\":\"CHEMISTRY, MULTIDISCIPLINARY\",\"Score\":null,\"Total\":0}","platform":"Semanticscholar","paperid":null,"PeriodicalName":"Carbon Letters","FirstCategoryId":"88","ListUrlMain":"https://link.springer.com/article/10.1007/s42823-026-01071-0","RegionNum":3,"RegionCategory":"材料科学","ArticlePicture":[],"TitleCN":null,"AbstractTextCN":null,"PMCID":null,"EPubDate":"","PubModel":"","JCR":"Q2","JCRName":"CHEMISTRY, MULTIDISCIPLINARY","Score":null,"Total":0}
Urea-assisted N-type conversion of laser-induced graphene for thermoelectric applications
Thermoelectric materials enable direct heat-to-electricity conversion. They have gained increasing interest in sustainable and wearable energy-harvesting systems. However, progress in flexible thermoelectric devices remains limited by the shortage of high-performance n-type organic materials, hindering the development of efficient p–n complementary modules. Laser-induced graphene (LIG) has attracted considerable attention for thermoelectric applications due to its high electrical conductivity, scalable fabrication, and compatibility with flexible substrates. However, LIG produced from polyimide typically exhibits p-type behavior, which limits its applicability in thermoelectric modules requiring complementary n-type materials. In this study, we address this limitation by introducing a simple and scalable urea-assisted strategy to convert p-type LIG into n-type LIG through nitrogen doping during the laser-induced graphitization process. First, we have fabricated LIG by direct laser writing on polyimide and subsequently treated with 5 and 10 wt% urea solutions, followed by mild annealing. Subsequent structural and chemical characterizations confirmed effective nitrogen incorporation, dominated by graphitic-N species, while preserving the porous 3D LIG network. Thermoelectric measurements revealed enhanced electrical conductivity (up to 1120 S/m) and a clear p-to-n transition, as evidenced by negative Seebeck coefficients in urea-treated films. The optimized LIG-10 N sample delivered the highest thermoelectric performance, reaching a power factor of 0.136 µW m⁻¹ K⁻² at 60 °C. Overall, this work provides a practical route for engineering n-type LIG, supporting the development of flexible thermoelectric modules for wearable and low-power energy-harvesting applications.
Graphical Abstract
The alternative text for this image may have been generated using AI.
期刊介绍:
Carbon Letters aims to be a comprehensive journal with complete coverage of carbon materials and carbon-rich molecules. These materials range from, but are not limited to, diamond and graphite through chars, semicokes, mesophase substances, carbon fibers, carbon nanotubes, graphenes, carbon blacks, activated carbons, pyrolytic carbons, glass-like carbons, etc. Papers on the secondary production of new carbon and composite materials from the above mentioned various carbons are within the scope of the journal. Papers on organic substances, including coals, will be considered only if the research has close relation to the resulting carbon materials. Carbon Letters also seeks to keep abreast of new developments in their specialist fields and to unite in finding alternative energy solutions to current issues such as the greenhouse effect and the depletion of the ozone layer. The renewable energy basics, energy storage and conversion, solar energy, wind energy, water energy, nuclear energy, biomass energy, hydrogen production technology, and other clean energy technologies are also within the scope of the journal. Carbon Letters invites original reports of fundamental research in all branches of the theory and practice of carbon science and technology.