Max Shulaker
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Engineering
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#10817
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Electrical Engineering
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Applied Physics
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Engineering
Why Is Max Shulaker Influential?
(Suggest an Edit or Addition)According to Wikipedia, Max M. Shulaker is a Stanford-educated American electrical engineer and a professor at MIT credited with the development of the first carbon nanotube computer and the first modern microprocessor built from carbon nanotube transistors. His research was widely reported in US and British media.
Max Shulaker's Published Works
Number of citations in a given year to any of this author's works
Total number of citations to an author for the works they published in a given year. This highlights publication of the most important work(s) by the author
Published Works
- Carbon nanotube computer (2013) (822)
- Three-dimensional integration of nanotechnologies for computing and data storage on a single chip (2017) (448)
- Modern microprocessor built from complementary carbon nanotube transistors (2019) (361)
- High‐Mobility, Aligned Crystalline Domains of TIPS‐Pentacene with Metastable Polymorphs Through Lateral Confinement of Crystal Growth (2014) (174)
- Energy-Efficient Abundant-Data Computing: The N3XT 1,000x (2015) (165)
- Monolithic 3D integration of logic and memory: Carbon nanotube FETs, resistive RAM, and silicon FETs (2014) (128)
- Fabrication of carbon nanotube field-effect transistors in commercial silicon manufacturing facilities (2020) (103)
- Brain-inspired computing exploiting carbon nanotube FETs and resistive RAM: Hyperdimensional computing case study (2018) (97)
- Linear increases in carbon nanotube density through multiple transfer technique. (2011) (76)
- Carbon nanotube circuit integration up to sub-20 nm channel lengths. (2014) (70)
- Understanding Energy Efficiency Benefits of Carbon Nanotube Field-Effect Transistors for Digital VLSI (2018) (64)
- The N3XT Approach to Energy-Efficient Abundant-Data Computing (2019) (62)
- Sensor-to-Digital Interface Built Entirely With Carbon Nanotube FETs (2014) (55)
- Hysteresis in Carbon Nanotube Transistors: Measurement and Analysis of Trap Density, Energy Level, and Spatial Distribution. (2016) (55)
- Hyperdimensional Computing Exploiting Carbon Nanotube FETs, Resistive RAM, and Their Monolithic 3D Integration (2018) (46)
- Hysteresis-Free Carbon Nanotube Field-Effect Transistors. (2017) (44)
- Monolithic 3D integration: A path from concept to reality (2015) (42)
- Rapid Co-Optimization of Processing and Circuit Design to Overcome Carbon Nanotube Variations (2015) (41)
- Tunable n-Type Doping of Carbon Nanotubes through Engineered Atomic Layer Deposition HfOX Films. (2018) (39)
- Carbon nanotube electronics - Materials, devices, circuits, design, modeling, and performance projection (2011) (37)
- High-performance carbon nanotube field-effect transistors (2014) (35)
- Monolithic three-dimensional integration of carbon nanotube FET complementary logic circuits (2013) (34)
- Experimental demonstration of a fully digital capacitive sensor interface built entirely using carbon-nanotube FETs (2013) (33)
- Negative Capacitance Carbon Nanotube FETs (2018) (32)
- Efficient metallic carbon nanotube removal for highly-scaled technologies (2015) (31)
- Carbon Nanotube CMOS Analog Circuitry (2019) (30)
- Monolithic three-dimensional integration of carbon nanotube FETs with silicon CMOS (2014) (25)
- Monolithic 3D integration advances and challenges: From technology to system levels (2014) (20)
- Carbon Nanotube-Based CMOS SRAM: 1 kbit 6T SRAM Arrays and 10T SRAM Cells (2019) (19)
- Time-Based Sensor Interface Circuits in CMOS and Carbon Nanotube Technologies (2016) (19)
- 30-nm Contacted Gate Pitch Back-Gate Carbon Nanotube FETs for Sub-3-nm Nodes (2019) (16)
- Rapid exploration of processing and design guidelines to overcome carbon nanotube variations (2013) (16)
- Carbon nanotube circuits: Opportunities and challenges (2013) (15)
- Monolithic Three-Dimensional Imaging System: Carbon Nanotube Computing Circuitry Integrated Directly Over Silicon Imager (2019) (12)
- Asymmetric gating for reducing leakage current in carbon nanotube field-effect transistors (2019) (12)
- Sacha: The stanford carbon nanotube controlled handshaking robot (2013) (11)
- Monolithic 3-D Integration (2019) (11)
- 1 Kbit 6T SRAM Arrays in Carbon Nanotube FET CMOS (2019) (10)
- Carbon nanotube imperfection-immune digital VLSI: Frequently asked questions updated (2011) (10)
- 29.8 SHARC: Self-Healing Analog with RRAM and CNFETs (2019) (9)
- Vacuum encapsulated resonators for humidity measurement (2010) (9)
- Computing with Carbon Nanotubes (2016) (9)
- Heterogeneous Integration of BEOL Logic and Memory in a Commercial Foundry: Multi-Tier Complementary Carbon Nanotube Logic and Resistive RAM at a 130 nm node (2020) (8)
- Low-power, high-performance S-NDR oscillators for stereo (3D) vision using directly-coupled oscillator networks (2016) (8)
- Electrochemical quantum tunneling for electronic detection and characterization of biological toxins (2012) (8)
- TRIG: Hardware Accelerator for Inference-Based Applications and Experimental Demonstration Using Carbon Nanotube FETs (2018) (7)
- ALD HfO2 Films for Defining Microelectrodes for Electrochemical Sensing and Other Applications. (2019) (6)
- DISC-FETs: Dual Independent Stacked Channel Field-Effect Transistors (2018) (4)
- X3D: Heterogeneous Monolithic 3D Integration of “X” (Arbitrary) Nanowires: Silicon, III–V, and Carbon Nanotubes (2019) (4)
- Robust design and experimental demonstrations of carbon nanotube digital circuits (2014) (4)
- Hyperdimensional Computing Nanosystem (2018) (4)
- Carbon Nanotubes for Radiation-Tolerant Electronics. (2021) (4)
- Temperature dependence of vacuum encapsulated resonators for humidity measurement (2011) (3)
- The Future of Hardware Technologies for Computing: N3XT 3D MOSAIC, Illusion Scaleup, Co-Design (2021) (3)
- Time-based sensor interface circuits in carbon nanotube technology (2015) (2)
- Carbon Nanotubes for Monolithic 3D ICs (2017) (2)
- Advancements with carbon nanotube digital systems (2014) (2)
- Advances in Carbon Nanotube Technologies: From Transistors to a RISC-V Microprocessor (2020) (1)
- Hyperdimensional computing nanosystem: in-memory computing using monolithic 3D integration of RRAM and CNFET (2020) (1)
- Transforming nanodevices to next generation nanosystems (2016) (1)
- Carbon electronics — From material synthesis to circuit demonstration (2011) (1)
- Special Session (New Topic): Emerging Computing and Testing Techniques (2019) (1)
- Comprehensive Study on High Purity Semiconducting Carbon Nanotube Extraction (2022) (0)
- Manufacturing Methodology for Carbon Nanotube Electronics (2020) (0)
- TRIG (2018) (0)
- Foundry Integration of Carbon Nanotube FETs With 320 nm Contacted Gate Pitch Using New Lift-Off-Free Process (2022) (0)
- Fabrication of carbon nanotube field-effect transistors in commercial silicon manufacturing facilities (2020) (0)
- Lift-off-Free Complementary Carbon Nanotube FETs Fabricated With Conventional Processing in a Silicon Foundry (2022) (0)
- Carbon Nanotube FETs for Robust Digital Logic Systems (2014) (0)
- Keynote address: Challenges and opportunities in electrical characterization and test for 14nm and below (2016) (0)
- DEPENDENCE OF VACUUM ENCAPSU TORS FOR HUMIDITY MEASUREMENT (2011) (0)
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What Schools Are Affiliated With Max Shulaker?
Max Shulaker is affiliated with the following schools: