{"id":{"repo_id":"uwo","oai_identifier":"oai:uwo.scholaris.ca:20.500.14721/31170"},"canonical_url":"https://search.dev.ndltd.org/etd/uwo/oai:uwo.scholaris.ca:20.500.14721/31170","repository":{"repo_id":"uwo","name":"Western University","base_url":"https://uwo.scholaris.ca/server/oai/request"},"display":{"title":"Study on graphene-based nanocomposites with special magnetoresistance properties","abstract":"Magnetoresistance (MR) refers to the change of a material’s electrical resistance under the presence of an external magnetic field. The discovery of new MR phenomena (e.g., giant magnetoresistance (GMR) and tunneling magnetoresistance (TMR)) since the 1980s initiates the revolution of novel electric devices in the fields of data storage, position sensing, current sensing, non-destructive monitoring, biomedical sensing systems, etc. However, current devices display inadequate MR at the low magnetic field/room temperature, limited working range, and bulky size, which hinders the further application of MR sensors/devices. Therefore, the main goal of this thesis is to develop two-dimensional MR materials with high performance and their potential applications. First, a new hybrid nanosheet was designed and developed by integrating reduced graphene oxide (rGO) and FeCo nanoparticles (NPs). A facile solvothermal process was developed to produce FeCo/rGO hybrid nanosheets with significant MR (21 ± 6%) at the low magnetic field (10 kOe) and room temperature. In addition, we demonstrated that the wireless magnetic field sensing system with FeCo/rGO hybrid nanosheets and ZigBee radio modules was able to achieve real-time detection and data collection of a working mobile phone. By adjusting the mass ratio of rGO adding to the system, we obtained the tunable MR of FeCo/rGO hybrid nanosheets. On the other hand, it was found that the formation of Co-Mn oxides NPs on rGO hybrid nanosheets was increased as the mass ratio of rGO added in the reaction exceeded 50 wt.%. The effects of imported ions on the MR of hybrid nanosheets were investigated. The formation of Co-Mn oxides NPs on hybrid nanosheets in this solvothermal process could lead to relatively high MR (3.5% ~ 4.5%) compared with other structures containing Co and Mn under the same conditions. In addition to the chemical synthesis, we constructed FeCo/rGO hybrid nanosheets by using a laser-assisted physical deposition process, i.e., the matrix-assisted pulsed laser evaporation (MAPLE). The FeCo/rGO hybrid nanosheets prepared by MAPLE displayed MR with a level of 0.7% at ambient temperature and low magnetic fields (10 kOe), which is larger than or close to the reported MR of physically prepared FeCo-based granular materials/structures with higher FeCo ratios. Finally, a mechanically flexible nanocomposite hydrogel with MR properties was developed. FeCo/rGO hybrid nanosheets were incorporated with the hydrogel matrix by using a photo-initiated polymerization process. The significant enhancements in mechanical properties compared with hydrogel matrix (toughness (0.11 MPa, 2.0x higher), Young's modulus (0.48 MPa, 1.5x higher), and maximal tensile stress (0.22 MPa, 1.7x higher)) and negative MR (-1.4 ± 0.3%) at room temperature and low magnetic fields were observed. This work provides the solution to the challenges of developing ideal MR materials/structures and offers a better understanding of designing graphene-based nanocomposites with large MR. We believe that the flexibility and integrability of FeCo/rGO hybrid nanosheets not only benefit the design of MR sensors but also pave the way for extending the application of MR devices in the foreseeable future.","abstract_html":"Magnetoresistance (MR) refers to the change of a material’s electrical resistance under the presence of an external magnetic field. The discovery of new MR phenomena (e.g., giant magnetoresistance (GMR) and tunneling magnetoresistance (TMR)) since the 1980s initiates the revolution of novel electric devices in the fields of data storage, position sensing, current sensing, non-destructive monitoring, biomedical sensing systems, etc. However, current devices display inadequate MR at the low magnetic field/room temperature, limited working range, and bulky size, which hinders the further application of MR sensors/devices. Therefore, the main goal of this thesis is to develop two-dimensional MR materials with high performance and their potential applications. First, a new hybrid nanosheet was designed and developed by integrating reduced graphene oxide (rGO) and FeCo nanoparticles (NPs). A facile solvothermal process was developed to produce FeCo/rGO hybrid nanosheets with significant MR (21 ± 6%) at the low magnetic field (10 kOe) and room temperature. In addition, we demonstrated that the wireless magnetic field sensing system with FeCo/rGO hybrid nanosheets and ZigBee radio modules was able to achieve real-time detection and data collection of a working mobile phone. By adjusting the mass ratio of rGO adding to the system, we obtained the tunable MR of FeCo/rGO hybrid nanosheets. On the other hand, it was found that the formation of Co-Mn oxides NPs on rGO hybrid nanosheets was increased as the mass ratio of rGO added in the reaction exceeded 50 wt.%. The effects of imported ions on the MR of hybrid nanosheets were investigated. The formation of Co-Mn oxides NPs on hybrid nanosheets in this solvothermal process could lead to relatively high MR (3.5% ~ 4.5%) compared with other structures containing Co and Mn under the same conditions. In addition to the chemical synthesis, we constructed FeCo/rGO hybrid nanosheets by using a laser-assisted physical deposition process, i.e., the matrix-assisted pulsed laser evaporation (MAPLE). The FeCo/rGO hybrid nanosheets prepared by MAPLE displayed MR with a level of 0.7% at ambient temperature and low magnetic fields (10 kOe), which is larger than or close to the reported MR of physically prepared FeCo-based granular materials/structures with higher FeCo ratios. Finally, a mechanically flexible nanocomposite hydrogel with MR properties was developed. FeCo/rGO hybrid nanosheets were incorporated with the hydrogel matrix by using a photo-initiated polymerization process. The significant enhancements in mechanical properties compared with hydrogel matrix (toughness (0.11 MPa, 2.0x higher), Young&#x27;s modulus (0.48 MPa, 1.5x higher), and maximal tensile stress (0.22 MPa, 1.7x higher)) and negative MR (-1.4 ± 0.3%) at room temperature and low magnetic fields were observed. This work provides the solution to the challenges of developing ideal MR materials/structures and offers a better understanding of designing graphene-based nanocomposites with large MR. We believe that the flexibility and integrability of FeCo/rGO hybrid nanosheets not only benefit the design of MR sensors but also pave the way for extending the application of MR devices in the foreseeable future.","abstract_has_math":false,"creators":["Yang, Songlin"],"institution":"The University of Western Ontario","degree_name":"Ph D","degree_level":null,"degree_discipline":"Chemical and Biochemical Engineering","degree_department":null,"school":null,"contributors":[],"advisors":["Zhang, Jin"],"committee_chairs":[],"committee_members":[],"year":2021,"date_issued":"2021-07-14","date_published":"2021-07-14","updated_at":"2026-07-27T21:56:01Z","subjects":["Magnetoresistance (MR)","reduced graphene oxide (rGO)","magnetic field sensor","FeCo nanoparticles","nanocomposite hydrogel"],"languages":["en_ca"],"rights":[],"rights_urls":[],"identifier_entries":[]},"links":{"outbound_url":"https://hdl.handle.net/20.500.14721/31170","outbound_label":"Handle","outbound_source":"dc:identifier.uri"},"metadata_groups":[{"id":"people","label":"People","entries":[{"key":"dc:contributor.advisor","label":"Advisor","values":["Zhang, Jin"]},{"key":"dc:creator","label":"Author","values":["Yang, Songlin"]}]},{"id":"academic_context","label":"Academic Context","entries":[{"key":"dc:date.accessioned","label":"Dc Date Accessioned","values":["2025-07-10T18:52:28Z"]},{"key":"dc:date.available","label":"Dc Date Available","values":["2025-07-10T18:52:28Z"]},{"key":"dc:date.issued","label":"Date","values":["2021-07-14"]},{"key":"dc:publisher","label":"Institution","values":["The University of Western Ontario"]},{"key":"dc:type","label":"Dc Type","values":["thesis"]},{"key":"thesis:degree_discipline","label":"Discipline","values":["Chemical and Biochemical Engineering"]},{"key":"thesis:degree_name","label":"Degree Name","values":["Ph D"]}]},{"id":"subjects_keywords","label":"Subjects and Keywords","entries":[{"key":"dc:subject","label":"Dc Subject","values":["Magnetoresistance (MR)","reduced graphene oxide (rGO)","magnetic field sensor","FeCo nanoparticles","nanocomposite hydrogel"]}]},{"id":"language_rights","label":"Language and Rights","entries":[{"key":"dc:language.iso","label":"Language (ISO)","values":["en_ca"]}]},{"id":"identifiers","label":"Identifiers","entries":[{"key":"dc:identifier.uri","label":"Identifier URI","values":["https://hdl.handle.net/20.500.14721/31170"]}]},{"id":"additional","label":"Additional Metadata","entries":[{"key":"dc:description","label":"Description","values":["The thesis cover page in the PDF document includes references to Western University’s previous institutional repository platform, known as Scholarship@Western, and links to that platform (beginning with ir.lib.uwo.ca). In citing or referring to this thesis, use the DOI or handle from this page instead. Sample citation: Author name, \"Thesis title.\" (Year). Western University Open Repository. https://doi.org/10.71858/123456."]},{"key":"dc:description.abstract","label":"Abstract","values":["Magnetoresistance (MR) refers to the change of a material’s electrical resistance under the presence of an external magnetic field. The discovery of new MR phenomena (e.g., giant magnetoresistance (GMR) and tunneling magnetoresistance (TMR)) since the 1980s initiates the revolution of novel electric devices in the fields of data storage, position sensing, current sensing, non-destructive monitoring, biomedical sensing systems, etc. However, current devices display inadequate MR at the low magnetic field/room temperature, limited working range, and bulky size, which hinders the further application of MR sensors/devices. Therefore, the main goal of this thesis is to develop two-dimensional MR materials with high performance and their potential applications. First, a new hybrid nanosheet was designed and developed by integrating reduced graphene oxide (rGO) and FeCo nanoparticles (NPs). A facile solvothermal process was developed to produce FeCo/rGO hybrid nanosheets with significant MR (21 ± 6%) at the low magnetic field (10 kOe) and room temperature. In addition, we demonstrated that the wireless magnetic field sensing system with FeCo/rGO hybrid nanosheets and ZigBee radio modules was able to achieve real-time detection and data collection of a working mobile phone. By adjusting the mass ratio of rGO adding to the system, we obtained the tunable MR of FeCo/rGO hybrid nanosheets. On the other hand, it was found that the formation of Co-Mn oxides NPs on rGO hybrid nanosheets was increased as the mass ratio of rGO added in the reaction exceeded 50 wt.%. The effects of imported ions on the MR of hybrid nanosheets were investigated. The formation of Co-Mn oxides NPs on hybrid nanosheets in this solvothermal process could lead to relatively high MR (3.5% ~ 4.5%) compared with other structures containing Co and Mn under the same conditions. In addition to the chemical synthesis, we constructed FeCo/rGO hybrid nanosheets by using a laser-assisted physical deposition process, i.e., the matrix-assisted pulsed laser evaporation (MAPLE). The FeCo/rGO hybrid nanosheets prepared by MAPLE displayed MR with a level of 0.7% at ambient temperature and low magnetic fields (10 kOe), which is larger than or close to the reported MR of physically prepared FeCo-based granular materials/structures with higher FeCo ratios. Finally, a mechanically flexible nanocomposite hydrogel with MR properties was developed. FeCo/rGO hybrid nanosheets were incorporated with the hydrogel matrix by using a photo-initiated polymerization process. The significant enhancements in mechanical properties compared with hydrogel matrix (toughness (0.11 MPa, 2.0x higher), Young's modulus (0.48 MPa, 1.5x higher), and maximal tensile stress (0.22 MPa, 1.7x higher)) and negative MR (-1.4 ± 0.3%) at room temperature and low magnetic fields were observed. This work provides the solution to the challenges of developing ideal MR materials/structures and offers a better understanding of designing graphene-based nanocomposites with large MR. We believe that the flexibility and integrability of FeCo/rGO hybrid nanosheets not only benefit the design of MR sensors but also pave the way for extending the application of MR devices in the foreseeable future."]},{"key":"dc:title","label":"Title","values":["Study on graphene-based nanocomposites with special magnetoresistance properties"]}]}],"canonical_facts":{"dc:contributor.advisor":["Zhang, Jin"],"dc:creator":["Yang, Songlin"],"dc:date.accessioned":["2025-07-10T18:52:28Z"],"dc:date.available":["2025-07-10T18:52:28Z"],"dc:date.issued":["2021-07-14"],"dc:description":["The thesis cover page in the PDF document includes references to Western University’s previous institutional repository platform, known as Scholarship@Western, and links to that platform (beginning with ir.lib.uwo.ca). In citing or referring to this thesis, use the DOI or handle from this page instead. Sample citation: Author name, \"Thesis title.\" (Year). Western University Open Repository. https://doi.org/10.71858/123456."],"dc:description.abstract":["Magnetoresistance (MR) refers to the change of a material’s electrical resistance under the presence of an external magnetic field. The discovery of new MR phenomena (e.g., giant magnetoresistance (GMR) and tunneling magnetoresistance (TMR)) since the 1980s initiates the revolution of novel electric devices in the fields of data storage, position sensing, current sensing, non-destructive monitoring, biomedical sensing systems, etc. However, current devices display inadequate MR at the low magnetic field/room temperature, limited working range, and bulky size, which hinders the further application of MR sensors/devices. Therefore, the main goal of this thesis is to develop two-dimensional MR materials with high performance and their potential applications. First, a new hybrid nanosheet was designed and developed by integrating reduced graphene oxide (rGO) and FeCo nanoparticles (NPs). A facile solvothermal process was developed to produce FeCo/rGO hybrid nanosheets with significant MR (21 ± 6%) at the low magnetic field (10 kOe) and room temperature. In addition, we demonstrated that the wireless magnetic field sensing system with FeCo/rGO hybrid nanosheets and ZigBee radio modules was able to achieve real-time detection and data collection of a working mobile phone. By adjusting the mass ratio of rGO adding to the system, we obtained the tunable MR of FeCo/rGO hybrid nanosheets. On the other hand, it was found that the formation of Co-Mn oxides NPs on rGO hybrid nanosheets was increased as the mass ratio of rGO added in the reaction exceeded 50 wt.%. The effects of imported ions on the MR of hybrid nanosheets were investigated. The formation of Co-Mn oxides NPs on hybrid nanosheets in this solvothermal process could lead to relatively high MR (3.5% ~ 4.5%) compared with other structures containing Co and Mn under the same conditions. In addition to the chemical synthesis, we constructed FeCo/rGO hybrid nanosheets by using a laser-assisted physical deposition process, i.e., the matrix-assisted pulsed laser evaporation (MAPLE). The FeCo/rGO hybrid nanosheets prepared by MAPLE displayed MR with a level of 0.7% at ambient temperature and low magnetic fields (10 kOe), which is larger than or close to the reported MR of physically prepared FeCo-based granular materials/structures with higher FeCo ratios. Finally, a mechanically flexible nanocomposite hydrogel with MR properties was developed. FeCo/rGO hybrid nanosheets were incorporated with the hydrogel matrix by using a photo-initiated polymerization process. The significant enhancements in mechanical properties compared with hydrogel matrix (toughness (0.11 MPa, 2.0x higher), Young's modulus (0.48 MPa, 1.5x higher), and maximal tensile stress (0.22 MPa, 1.7x higher)) and negative MR (-1.4 ± 0.3%) at room temperature and low magnetic fields were observed. This work provides the solution to the challenges of developing ideal MR materials/structures and offers a better understanding of designing graphene-based nanocomposites with large MR. We believe that the flexibility and integrability of FeCo/rGO hybrid nanosheets not only benefit the design of MR sensors but also pave the way for extending the application of MR devices in the foreseeable future."],"dc:identifier.uri":["https://hdl.handle.net/20.500.14721/31170"],"dc:language.iso":["en_ca"],"dc:publisher":["The University of Western Ontario"],"dc:subject":["Magnetoresistance (MR)","reduced graphene oxide (rGO)","magnetic field sensor","FeCo nanoparticles","nanocomposite hydrogel"],"dc:title":["Study on graphene-based nanocomposites with special magnetoresistance properties"],"dc:type":["thesis"],"thesis:degree_discipline":["Chemical and Biochemical Engineering"],"thesis:degree_name":["Ph D"]},"updated_at":"2026-07-27T21:56:01Z"}