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* Chenlong Zhang, Sandra Cvetanovic, Joshua M. Pearce. [https://doi.org/10.1016/j.mex.2017.07.001 Fabricating Ordered 2-D Nano-Structured Arrays Using Nanosphere Lithography]. ''MethodsX'' 4, 2017, pp. 229-242. DOI:10.1016/j.mex. [https://www.academia.edu/34554395/Fabricating_ordered_2-D_nano-structured_arrays_using_nanosphere_lithography open access]* A. Chandrasekaran, J. Mayandi, J. Osborne, M. Frost, C. Ekstrum, J. M. Pearce. Inhibition of growth of S. epidermidis by hydrothermally synthesized ZnO nanoplates”  Materials Research Express 4(7) 075401. https://doi.org/10.1088/2053-1591/aa796d [https://www.academia.edu/33887255/Inhibition_of_growth_of_S._epidermidis_by_hydrothermally_synthesized_ZnO_nanoplates open access]
* Arvind Ravindran, Sean Scsavnicki, Walker Nelson, Peter Gorecki, Jacob Franz, Shane Oberloier, Theresa K. Meyer, Andrew R. Barnard and Joshua M. Pearce. Open Source Waste Plastic Granulator. ''Technologies'' 2019, 7(4), 74; https://doi.org/10.3390/technologies7040074  [https://www.academia.edu/40616354/Open_Source_Waste_Plastic_Granulator open access]
*  Sangeetha Periasamy, Sasirekha Venkidusamy, Ragavendran Venkatesan, Jeyanthinath Mayandi, Joshua Pearce, Josefine Helene Selj, Ramakrishnan Veerabahu.  [https://doi.org/10.1515/zpch-2016-0961 Micro-Raman Scattering of Nanoscale Silicon in Amorphous and Porous Silicon]. Zeitschrift für Physikalische Chemie. DOI: https://doi.org/10.1515/zpch-2016-0961, March 2017. [open access]
* Ville Klar, Joshua M.Pearce, Pyry Kärki, Petri Kuosmanen, [https://www.sciencedirect.com/science/article/pii/S2468067219300471 Ystruder: open source multifunction extruder with sensing and monitoring capabilities]. ''HardwareX'' 6 (2019) e00080. https://doi.org/10.1016/j.ohx.2019.e00080 [https://www.academia.edu/40555880/Ystruder_Open_source_multifunction_extruder_with_sensing_and_monitoring_capabilities open access]
* Niklas Kretzschmar, Sami Lipponen, Ville Klar, Joshua M. Pearce, Tom L. Ranger, Jukka Seppälä, and Jouni Partanen. Mechanical Properties of Ultraviolet-Assisted Paste Extrusion and Postextrusion Ultraviolet-Curing of Three-Dimensional Printed Biocomposites. ''3D Printing and Additive Manufacturing''. 6(3) 127-137, 2019. https://doi.org/10.1089/3dp.2018.0148 [https://www.academia.edu/39160225/Mechanical_Properties_of_Ultraviolet-Assisted_Paste_Extrusion_and_Postextrusion_Ultraviolet-Curing_of_Three-Dimensional_Printed_Biocomposites open access]
* Matthew J. Reich, Aubrey L. Woern, Nagendra G. Tanikella, and Joshua M. Pearce. Mechanical Properties & Applications of Recycled Polycarbonate Particle Material Extrusion-based Additive Manufacturing. ''Materials'' 2019, 12(10), 1642; https://doi.org/10.3390/ma12101642 [https://www.academia.edu/39222715/Mechanical_Properties_and_Applications_of_Recycled_Polycarbonate_Particle_Material_Extrusion-Based_Additive_Manufacturing open access]
* Ragavendran Venkatesan, Jeyanthinath Mayandi, Joshua M. Pearce, Vishnukanthan Venkatachalapathy. Influence of metal assisted chemical etching time period on mesoporous structure in as-cut upgraded metallurgical grade silicon for solar cell application. ''Journal of Materials Science: Materials in Electronics'' 30(9), pp 8676–8685 (2019). https://doi.org/10.1007/s10854-019-01191-6 [https://www.academia.edu/38751283/Influence_of_metal_assisted_chemical_etching_time_period_on_mesoporous_structure_in_as-cut_upgraded_metallurgical_grade_silicon_for_solar_cell_application open access]
* Joshua M. Pearce, Maryam Khaksari, and David Denkenberger. [https://www.mdpi.com/2223-7747/8/5/110 Preliminary Automated Determination of Edibility of Alternative Foods: Non-Targeted Screening for Toxins in Red Maple Leaf Concentrate]. ''Plants'' 2019, 8(5), 110; https://doi.org/10.3390/plants8050110 [https://www.academia.edu/38936253/Preliminary_Automated_Determination_of_Edibility_of_Alternative_Foods_Non-Targeted_Screening_for_Toxins_in_Red_Maple_Leaf_Concentrate open access]
* R.Selvapriya, J.Mayandi, V.Ragavendran, V.Sasirekha,J.Vinodhini, J.M.Pearce. [https://www.sciencedirect.com/science/article/pii/S0272884219300082 Dual Morphology Titanium Dioxide for Dye Sensitized Solar Cells].  ''Ceramics International'' 45(6),7268-7277 (2019). https://doi.org/10.1016/j.ceramint.2019.01.008 [https://www.academia.edu/38385827/Dual_morphology_titanium_dioxide_for_dye_sensitized_solar_cells open access]
* Lyes Azzouz, Yong Chen, Mauro Zarrelli, Joshua M.Pearce, Leslie Mitchell, Guogang Ren, Marzio Grasso. [https://www.sciencedirect.com/science/article/pii/S0263822318341497 Mechanical properties of 3-D printed truss-like lattice biopolymer non-stochastic structures for sandwich panels with natural fibre composite skins], ''Composite Structures'' 213:220-230 (2019).https://doi.org/10.1016/j.compstruct.2019.01.103  [https://www.academia.edu/38273631/Mechanical_properties_of_3-D_printed_truss-like_lattice_biopolymer_non-stochastic_structures_for_sandwich_panels_with_natural_fibre_composite_skins open access]
* J.Vinodhini, J.Mayandi, R.Atchudan, P.Jayabal, V.Sasirekha, J.M.Pearce. Effect of microwave power irradiation on TiO2 nano-structures and binder free paste screen printed dye sensitized solar cells. ''Ceramics International'' 45(4), 4667-4673 (2019). https://doi.org/10.1016/j.ceramint.2018.11.157  [https://www.academia.edu/38259270/Effect_of_microwave_power_irradiation_on_TiO2_nano-structures_and_binder_free_paste_screen_printed_dye_sensitized_solar_cells open access]
* Kexun Chen, Jiawei Zha, Fenqin Hu, Xiaoya Ye, Shuai Zou, Ville Vähänissi, Joshua M.Pearce, Hele Savin, Xiaodong Su, [https://doi.org/10.1016/j.solmat.2018.10.015 MACE nano-texture process applicable for both single- and multi-crystalline diamond-wire sawn Si solar cells].''Solar Energy Materials and Solar Cells''191, March 2019, pp. 1-8. https://doi.org/10.1016/j.solmat.2018.10.015 [https://www.academia.edu/37761273/MACE_nano-texture_process_applicable_for_both_single-_and_multi-crystalline_diamond-wire_sawn_Si_solar_cells open access]
* Adam M. Pringle, Mark Rudnicki, and Joshua Pearce (2017) Wood Furniture Waste-Based Recycled 3-D Printing Filament. ''Forest Products Journal'' 2018, Vol. 68, No. 1, pp. 86-95. https://doi.org/10.13073/FPJ-D-17-00042 [https://www.academia.edu/37662455/Wood_Furniture_Waste-Based_Recycled_3-D_Printing_Filament open access]
* T.P.Pasanen, G.von Gastrow, I.T.S.Heikkinen, V.Vähänissi, H.Savin, J.M.Pearce. [https://doi.org/10.1016/j.mssp.2018.08.027 Compatibility of 3-D printed devices in cleanroom environments for semiconductor processing]. ''Materials Science in Semiconductor Processing'' 89 (2019), pp. 59-67.  https://doi.org/10.1016/j.mssp.2018.08.027 [https://www.academia.edu/37346428/Compatibility_of_3-D_Printed_Devices_in_Cleanroom_Environments_for_Semiconductor_Processing open access]
* Woern, A.L.; Byard, D.J.; Oakley, R.B.; Fiedler, M.J.; Snabes, S.L.; Pearce, J.M. Fused Particle Fabrication 3-D Printing: Recycled Materials’ Optimization and Mechanical Properties. ''Materials'' '''2018''', 11, 1413. doi: https://doi.org/10.3390/ma11081413  [https://www.academia.edu/37223823/Fused_Particle_Fabrication_3-D_Printing_Recycled_Materials_Optimization_and_Mechanical_Properties open access]
* Nupur Bihari, Smruti Prasad Dash, Karankumar C. Dhankani, Joshua M. Pearce. 3-D printable open source dual axis gimbal system for optoelectronic measurements. ''Mechatronics'' (in press) DOI: https://doi.org/10.1016/j.mechatronics.2018.07.005
* Ismo T. S. Heikkinen, Christoffer Kauppinen, Zhengjun Liu, Sanja M. Asikainen, Steven Spoljaric, Jukka V. Seppälä, Hele Savin, and Joshua M. Pearce. Chemical Compatibility of Fused Filament Fabrication -based 3-D Printed Components with Solutions Commonly Used in Semiconductor Wet Processing.  ''Additive Manufacturing'' 23, pp. 99-107 (2018). DOI: https://doi.org/10.1016/j.addma.2018.07.015 [https://www.academia.edu/37171248/Chemical_Compatibility_of_Fused_Filament_Fabrication-based_3-D_Printed_Components_with_Solutions_Commonly_Used_in_Semiconductor_Wet_Processing open access]
* Aubrey L. Woern, Joseph R. McCaslin, Adam M. Pringle, and Joshua M. Pearce. RepRapable Recyclebot: Open Source 3-D Printable Extruder for Converting Plastic to 3-D Printing Filament. ''HardwareX'' 4C (2018) e00026 doi: https://doi.org/10.1016/j.ohx.2018.e00026 [https://www.academia.edu/36721604/RepRapable_Recyclebot_Open_source_3-D_printable_extruder_for_converting_plastic_to_3-D_printing_filament open access]
* Wijnen, B., Sanders, P. & Pearce, J.M. Improved model and experimental validation of deformation in fused filament fabrication of polylactic acid. ''Progress in Additive Manufacturing'' 3(4), pp. 193–203 (2018). https://doi.org/10.1007/s40964-018-0052-4 [https://www.academia.edu/37894633/Improved_Model_and_Experimental_Validation_of_Deformation_in_Fused_Filament_Fabrication_of_Poly_Lactic_Acid open access]
*  Saravanan Vanal Krishnan, Sivakumar Palanivelu, Muthu Manickam Muthukaruppan Ambalam, Ragavendran Venkatesan, Muthukumar Arivalagan, Joshua M. Pearce, Jeyanthinath Mayandi, [https://doi.org/10.1515/zpch-2017-1075 Chemical Synthesis and Characterization of Nano Alumina, Nano Composite of Carbon–Alumina and Their Comparative Studies] ''Zeitschrift für Physikalische Chemie'', 232(12), (2018) 1827–1842. DOI: https://doi.org/10.1515/zpch-2017-1075 
* John J. Laureto and Joshua M. Pearce. [https://doi.org/10.1016/j.polymertesting.2018.04.029 Anisotropic mechanical property variance between ASTM D638-14 type I and type IV fused filament fabricated specimens]. ''Polymer Testing'' 68: 294-301 (2018). DOI: 10.1016/j.polymertesting.2018.04.029 [https://www.academia.edu/36496554/Anisotropic_Mechanical_Property_Variance_Between_ASTM_D638-14_Type_I_and_Type_IV_Fused_Filament_Fabricated_Specimens open access]
* Joshua M. Pearce [https://doi.org/10.1016/j.mattod.2018.02.002 Expanding the Consumer Bill of Rights for material ingredients]. ''Materials Today'' 21(3), pp. 197-198 (2018). DOI: https://doi.org/10.1016/j.mattod.2018.02.002 [https://www.academia.edu/36484688/Expanding_the_Consumer_Bill_of_Rights_for_Material_Ingredients Open access preprint]
*  M. Marikkannan, A. Dinesh, J. Mayandi, V. Vishnukanthan, J.M. Pearce. [https://doi.org/10.1016/j.matlet.2018.03.097 Properties of Al-Doped Zinc Oxide and In-Doped Zinc Oxide Bilayer Transparent Conducting Oxides for Solar Cell Applications] ''Materials Express''. 222, (2018) pp. 50-53. doi:10.1016/j.matlet.2018.03.097 [https://www.academia.edu/36306727/Properties_of_Al-Doped_Zinc_Oxide_and_In-Doped_Zinc_Oxide_Bilayer_Transparent_Conducting_Oxides_towards_Solar_Cell_Applications open access preprint]
* Ragavendran Venkatesan, Muthu Kumar Arivalagan, Vishnukanthan Venkatachalapathy, Joshua M. Pearce, Jeyanthinath Mayandi, [https://www.sciencedirect.com/science/article/pii/S0167577X18304178 Effects of silver catalyst concentration in metal assisted chemical etching of silicon] , ''Materials Express''. 221, 15 (2018), pp. 206-210. doi:        https://doi.org/10.1016/j.matlet.2018.03.053 [https://www.academia.edu/36294660/Effects_of_silver_catalyst_concentration_in_metal_assisted_chemical_etching_of_silicon open access]
*  Ştefan Ţălu, Slawomir Kulesza, Miroslaw Bramowicz, Adam M. Pringle, Joshua M. Pearce, M. Marikkannan, V. Vishnukanthang, J. Mayandi. [https://doi.org/10.1016/j.matlet.2018.03.005 Micromorphology analysis of sputtered indium tin oxide fabricated with variable ambient combinations]. ''Materials Express''. 220 (2018), 169–171. doi:10.1016/j.matlet.2018.03.005 [https://www.academia.edu/36214749/Micromorphology_analysis_of_sputtered_indium_tin_oxide_fabricated_with_variable_ambient_combinations open access preprint]
* L.Y. Beeker, Adam M. Pringle, Joshua M. Pearce. [http://www.sciencedirect.com/science/article/pii/S221486041730012X Open-source parametric 3-D printed slot die system for thin film semiconductor processing]. ''Additive Manufacturing'' 20 (2018) 90–100. https://doi.org/10.1016/j.addma.2017.12.004 [https://www.academia.edu/35667969/Open-source_Parametric_3-D_Printed_Slot_Die_System_for_Thin_Film_Semiconductor_Processing open access]
* A. Chandrasekaran, T. Prasankumar, Sujin P Jose, K. Anitha, C. Ekstrum, J. M. Pearce, J. Mayandi. “Synthetic method dependent physico-chemical properties and electrochemical performance of Ni doped ZnO”, ''Chemistry Select'' 2(28), 2017, pp. 9014–9023. doi: https://doi.org/10.1002/slct.201701584 [https://www.academia.edu/34837139/Synthetic_method_dependent_physico-_chemical_properties_and_electrochemical_performance_of_Ni_doped_Synthetic_method_dependent_physico-chemical_properties_and_electrochemical_performance_of_Ni_doped_ZnO open access]
*Jephias Gwamuri, Ragavendran Venkatesan, Mehdi Sadatdol, Jeyanthinath Mayandi , Durdu O. Guney, Joshua M. Pearce, [https://www.spiedigitallibrary.org/journals/Journal-of-Photonics-for-Energy/volume-7/issue-3/037002/Ambiance-dependent-agglomeration-and-surface-enhanced-Raman-spectroscopy-response-of/10.1117/1.JPE.7.037002.short Ambient-dependent Agglomeration and Surface-Enhanced Raman Spectroscopy Response of Self-Assembled Silver Nano-particles for Plasmonic Photovoltaic Devices], ''Journal of Photonics for Energy'' 7(3), 037002 (2017), doi: 10.1117/1.JPE.7.037002 [https://www.academia.edu/34653590/Ambient-dependent_Agglomeration_and_Surface-Enhanced_Raman_Spectroscopy_Response_of_Self-Assembled_Silver_Nano-particles_for_Plasmonic_Photovoltaic_Devices open access]
* Chenlong Zhang, Sandra Cvetanovic, Joshua M. Pearce. [https://doi.org/10.1016/j.mex.2017.07.001 Fabricating Ordered 2-D Nano-Structured Arrays Using Nanosphere Lithography]. ''MethodsX'' 4, 2017, pp. 229-242. DOI:10.1016/j.mex. [https://www.academia.edu/34554395/Fabricating_ordered_2-D_nano-structured_arrays_using_nanosphere_lithography open access]
* A. Chandrasekaran, J. Mayandi, J. Osborne, M. Frost, C. Ekstrum, J. M. Pearce. Inhibition of growth of S. epidermidis by hydrothermally synthesized ZnO nanoplates”  Materials Research Express 4(7) 075401. https://doi.org/10.1088/2053-1591/aa796d [https://www.academia.edu/33887255/Inhibition_of_growth_of_S._epidermidis_by_hydrothermally_synthesized_ZnO_nanoplates open access]
*  Sangeetha Periasamy, Sasirekha Venkidusamy, Ragavendran Venkatesan, Jeyanthinath Mayandi, Joshua Pearce, Josefine Helene Selj, Ramakrishnan Veerabahu.  [https://doi.org/10.1515/zpch-2016-0961 Micro-Raman Scattering of Nanoscale Silicon in Amorphous and Porous Silicon]. ''Zeitschrift für Physikalische Chemie''.231(9), pp. 1585-1598 (2017). DOI: https://doi.org/10.1515/zpch-2016-0961   [https://www.academia.edu/34627475/Micro_Raman_Scattering_of_Nanoscale_Silicon_in_Amorphous_and_Porous_Silicon open access]
* John Laureto, Julie Tomasi, Julia A. King, Joshua M. Pearce. [http://rdcu.be/q7Zm Thermal properties of 3-D printed polylactic acid-metal composites], ''Progress in Additive Manufacturing'' 2(1), 57-71 (2017).  doi:10.1007/s40964-017-0019-x [https://www.academia.edu/32980462/Thermal_Properties_of_3-D_Printed_Polylactic_Acid_-Metal_Composites open access]
* John Laureto, Julie Tomasi, Julia A. King, Joshua M. Pearce. [http://rdcu.be/q7Zm Thermal properties of 3-D printed polylactic acid-metal composites], ''Progress in Additive Manufacturing'' 2(1), 57-71 (2017).  doi:10.1007/s40964-017-0019-x [https://www.academia.edu/32980462/Thermal_Properties_of_3-D_Printed_Polylactic_Acid_-Metal_Composites open access]
* Nagendra G. Tanikella, Ben Wittbrodt  and Joshua M. Pearce. [http://www.sciencedirect.com/science/article/pii/S2214860416300859 Tensile Strength of Commercial Polymer Materials for Fused Filament Fabrication 3-D Printing].  ''Additive Manufacturing'' 15: pp. 40–47 (2017). DOI: 10.1016/j.addma.2017.03.005 [https://www.academia.edu/31967126/Tensile_Strength_of_Commercial_Polymer_Materials_for_Fused_Filament_Fabrication_3D_Printing open access]  
* Nagendra G. Tanikella, Ben Wittbrodt  and Joshua M. Pearce. [http://www.sciencedirect.com/science/article/pii/S2214860416300859 Tensile Strength of Commercial Polymer Materials for Fused Filament Fabrication 3-D Printing].  ''Additive Manufacturing'' 15: pp. 40–47 (2017). DOI: 10.1016/j.addma.2017.03.005 [https://www.academia.edu/31967126/Tensile_Strength_of_Commercial_Polymer_Materials_for_Fused_Filament_Fabrication_3D_Printing open access]  
* Haselhuhn, A.S., Sanders, P.G. & Pearce, J.M. [http://link.springer.com/article/10.1007%2Fs40962-017-0133-z Hypoeutectic Aluminum–Silicon Alloy Development for GMAW-Based 3-D Printing Using Wedge Castings ] ''International Journal of Metalcasting'' (2017). (in press) doi:10.1007/s40962-017-0133-z [https://www.academia.edu/31199885/Hypoeutectic_Aluminum-Silicon_Alloy_Development_for_GMAW-Based_3-D_Printing_Using_Wedge_Castings open access]  
* Haselhuhn, A.S., Sanders, P.G. & Pearce, J.M. [http://link.springer.com/article/10.1007%2Fs40962-017-0133-z Hypoeutectic Aluminum–Silicon Alloy Development for GMAW-Based 3-D Printing Using Wedge Castings ] ''International Journal of Metalcasting'' 11(4) 843-856(2017). doi:10.1007/s40962-017-0133-z [https://www.academia.edu/31199885/Hypoeutectic_Aluminum-Silicon_Alloy_Development_for_GMAW-Based_3-D_Printing_Using_Wedge_Castings open access]  
* Handy Chandra, Spencer W. Allen, Shane W. Oberloier, Nupur Bihari, Jephias Gwamuri and Joshua M. Pearce. [http://www.mdpi.com/1996-1944/10/2/110 Open-Source Automated Mapping Four-Point Probe]. ''Materials'' 2017, 10(2), 110. doi: 10.3390/ma10020110 [https://www.academia.edu/31083196/Open-Source_Automated_Mapping_Four-Point_Probe open access]
* Handy Chandra, Spencer W. Allen, Shane W. Oberloier, Nupur Bihari, Jephias Gwamuri and Joshua M. Pearce. [http://www.mdpi.com/1996-1944/10/2/110 Open-Source Automated Mapping Four-Point Probe]. ''Materials'' 2017, 10(2), 110. doi: 10.3390/ma10020110 [https://www.academia.edu/31083196/Open-Source_Automated_Mapping_Four-Point_Probe open access]
*    C. Abinaya, M. Marikkannan, M. Manikandan, J. Mayandi, P. Suresh, V. Shanmugaiah, C. Ekstrum, J.M. Pearce, Structural and optical characterization and efficacy of hydrothermal synthesized Cu and Ag doped zinc oxide nanoplate bactericides. ''Materials Chemistry and Physics'' '''184''' (2016), pp. 172–182. http://dx.doi.org/10.1016/j.matchemphys.2016.09.039 [https://www.academia.edu/29413026/Structural_and_optical_characterization_and_efficacy_of_hydrothermal_synthesized_Cu_and_Ag_doped_zinc_oxide_nanoplate_bactericides open access]
*    C. Abinaya, M. Marikkannan, M. Manikandan, J. Mayandi, P. Suresh, V. Shanmugaiah, C. Ekstrum, J.M. Pearce, Structural and optical characterization and efficacy of hydrothermal synthesized Cu and Ag doped zinc oxide nanoplate bactericides. ''Materials Chemistry and Physics'' '''184''' (2016), pp. 172–182. http://dx.doi.org/10.1016/j.matchemphys.2016.09.039 [https://www.academia.edu/29413026/Structural_and_optical_characterization_and_efficacy_of_hydrothermal_synthesized_Cu_and_Ag_doped_zinc_oxide_nanoplate_bactericides open access]

Revision as of 11:09, 14 October 2019

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