Piezoresistive vs Capacitive Pressure Sensor: Technical Differences

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Process Instrumentation
Piezoresistive vs Capacitive Pressure Sensor: Technical Differences

The piezoresistive pressure sensor and the capacitive pressure sensor are the two dominant MEMS-based sensing technologies in industrial transmitters and precision instruments.

Both use a thin silicon diaphragm, but measure deflection by completely different physical principles.

This guide covers the working principle of each piezoresistive pressure sensor type, the key technical differences, temperature characteristics, and how to select the correct technology for your application.

Wheatstone Bridge vs Capacitance Gauge Factor 100 to 175 Temperature Coefficient MEMS Silicon Diaphragm

A piezoresistive pressure sensor converts diaphragm strain into a resistance change, measured by a Wheatstone bridge.

A capacitive sensor converts deflection into a capacitance change between two plates.

Piezoresistive sensors offer simpler conditioning and better dynamic response.

Capacitive sensors have lower temperature sensitivity and better resolution at very low pressures.

Piezoresistive vs Capacitive

Piezoresistive Pressure Sensor: Working Principle

Hello! Today we are comparing two silicon MEMS pressure sensor technologies: piezoresistive and capacitive. These are the sensors inside almost every smart industrial pressure transmitter, MEMS barometer, and precision pressure transducer.

Understanding the physics of both types helps you read transmitter specifications correctly.

It also helps you choose the right sensing technology for a demanding application.

The piezoresistive pressure sensor exploits the piezoresistive effect: mechanical stress on a silicon crystal changes its resistivity proportionally.

This change is 50 to 100 times larger in silicon than in metals, making silicon the dominant material for this sensor type.

Four piezoresistors are diffused into a thin silicon diaphragm at the points of maximum stress.

They form a Wheatstone bridge: when pressure deflects the diaphragm, two resistors increase and two decrease, producing an output voltage proportional to pressure.

See the Wheatstone bridge guide for the circuit fundamentals.

Piezoresistive Sensor Output Voltage
V_out = V_exc × GF × ε = V_exc × (ΔR/R)
V_out: bridge output voltage (mV)
V_exc: excitation voltage applied to the bridge (V)
GF: gauge factor of the piezoresistors (silicon: 100 to 175, metal foil: 2 to 4)
ε: mechanical strain at the piezoresistor location (dimensionless)
ΔR/R: fractional resistance change

Typical full-scale output: 10 to 100 mV at 10 V excitation for an industrial pressure range.
This bridge output is amplified, temperature-compensated, and linearised by the ASIC before producing the 4-20 mA or digital output.
Did You Know? The gauge factor of single-crystal silicon piezoresistors (100 to 175) is roughly 50 times larger than metal foil strain gauges (2 to 4).

In metals, resistance changes mainly from geometric deformation. In silicon, the dominant mechanism is a quantum change in the crystal band structure that alters carrier mobility — a far larger effect.
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Capacitive Pressure Sensor: Working Principle

A capacitive pressure sensor uses a flexible silicon diaphragm as one plate of a capacitor, separated from a fixed backplate by a gap of 1 to 10 micrometres.

Pressure deflects the diaphragm, reducing the gap and increasing capacitance.

The capacitance change is the measured signal.

Capacitive Sensor: Parallel Plate Capacitance
C = ε₀ × εᵣ × A / d
C: capacitance (farads)
ε₀: permittivity of free space = 8.854 × 10⁻¹² F/m
εᵣ: relative permittivity of the dielectric (≈ 1.0 for vacuum or air gap)
A: overlapping plate area (m²)
d: gap between the diaphragm and the backplate (m)

When pressure reduces d by 10%: C increases by approximately 11%.
Typical full-scale capacitance change: 1 to 20 pF from a baseline of 10 to 100 pF.
This small capacitance change requires a high-frequency AC excitation circuit (typically 100 kHz to 5 MHz) and synchronous detection to resolve accurately.
Did You Know? A typical MEMS capacitive pressure sensor has only 10 to 100 pF of capacitance.

To achieve 0.1% resolution, the ASIC must resolve changes below 0.1 pF. That requires extremely low-noise switched-capacitor circuits at high clock frequencies — which is why capacitive signal conditioning is more complex and costly than piezoresistive.
Tip: The capacitance of a sensor changes with the dielectric constant of the material between the plates.

If condensate enters the gap of a capacitive sensor (common in vented gauge sensors in humid atmospheres), the dielectric shifts and the reading is permanently offset.

Piezoresistive sensors are less sensitive to this failure because their output depends on resistivity, not permittivity. For humid vented gauge service, choose a piezoresistive sensor with a hermetically sealed reference cavity.
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Piezoresistive Pressure Sensor vs Capacitive: Full Technical Comparison

ParameterPiezoresistive Pressure SensorCapacitive Pressure Sensor
Physical principleStress-induced resistance change in silicon piezoresistors (Wheatstone bridge)Pressure-induced gap change alters capacitance between diaphragm and backplate
Output signalLow-level voltage (typically 10 to 100 mV FS at 10 V excitation)Capacitance change (typically 1 to 20 pF FS)
Signal conditioning complexityLow: DC-excited Wheatstone bridge with differential amplifier and temperature correctionHigh: high-frequency AC excitation circuit, synchronous demodulation, C-to-V conversion
Temperature coefficient of offset (TCO)Higher: silicon piezoresistors show TCO of 0.01 to 0.05% FS per °C without compensationLower: capacitance gap geometry has lower temperature dependence than carrier mobility in silicon
Temperature coefficient of span (TCS)Moderate: gauge factor varies with temperature (about 0.02 to 0.1% FS per °C uncompensated)Lower: the capacitance change per unit pressure is less temperature-dependent
Dynamic response / bandwidthExcellent: DC to several kHz; suitable for dynamic pressure measurement, pressure spikes, and pulsation monitoringLimited by the AC excitation frequency: typically below 500 Hz for standard capacitive designs
Resolution at low pressureModerate: limited by Johnson (thermal) noise in the bridge resistors and amplifier noiseHigh: extremely small gap changes (sub-nanometre) produce detectable capacitance changes, enabling very low full-scale ranges (0 to 1 mbar)
Sensitivity to humidity and contaminationLower: output depends on crystal resistivity, not dielectric constant of surrounding mediumHigher: contamination of the gap changes the dielectric and shifts the reading
Overpressure ratingVery high: silicon diaphragm can withstand 10× to 100× rated range before fracture in burst-pressure designsModerate: backplate limits the maximum diaphragm deflection (touch-mode designs can survive higher overpressure)
CostLower: simpler signal conditioning ASIC, mature high-volume MEMS processHigher: complex ASIC, tighter manufacturing tolerances for the gap
Typical industrial applicationsIndustrial transmitters (Rosemount 3051, Yokogawa EJX series), process gauges, hydraulic systems, pneumatic controlsBarometric pressure, low differential pressure (HVAC, clean rooms, airflow), precision laboratory instruments

Temperature Sensitivity in Piezoresistive Pressure Sensor vs Capacitive

Both sensor types require temperature compensation in the signal conditioning ASIC. However, the raw (uncompensated) temperature sensitivity differs significantly, affecting how much correction is needed and what residual errors remain after compensation.

Piezoresistive temperature behaviour: The gauge factor of silicon decreases at approximately minus 0.2% per °C — sensitivity drops with every degree rise, before counting zero offset change.

The zero offset also drifts from thermally induced stress in the package.

Uncompensated, total temperature error is 1 to 5% of full scale over 100°C. After ASIC compensation, this reduces to 0.05 to 0.2% URL per 28°C — the figure shown on the transmitter data sheet.
Capacitive temperature behaviour: The gap dimension changes with temperature due to thermal expansion mismatch between diaphragm, substrate, and bond material.

Because the gap and plate area expand together, there is partial self-cancellation. The net uncompensated temperature coefficient is typically 0.01 to 0.05% FS per °C — 3 to 5 times lower than a piezoresistive element.

This is why capacitive sensing dominates in precision barometers, weather stations, and low-range instruments where residual temperature error is critical.
Tip: When a data sheet specifies 0.1% URL per 28°C, that is the residual error after ASIC compensation — not the raw sensor behaviour.

A piezoresistive transmitter needed a larger correction to achieve this figure. Any uncorrected effect (thermal shock, temperature gradient across the body) causes a larger residual error than in a capacitive design.

For critical measurements with rapid temperature changes, ask the manufacturer which technology is used and request the uncompensated temperature coefficient.
Did You Know? The Rosemount 3051 (one of the world's most widely installed DP transmitters) uses a capacitive sensing element.

Emerson's design uses a 40 mm silicon diaphragm with a hermetically sealed reference cavity, and a capacitance bridge (two capacitors, one on each side) that gives inherent differential temperature cancellation.

This is why the 3051 achieves plus or minus 0.04% of span accuracy. The bridge measures the ratio of two capacitances rather than an absolute value, reducing temperature coefficient significantly.

When to Use a Piezoresistive Pressure Sensor vs Capacitive

Choose Piezoresistive When

Dynamic pressure measurement is needed: spikes, water hammer, pulsation above 10 Hz.

Cost is a primary driver. Typical range: 1 to 1000 bar. See the 4-20 mA signal guide for transmitter output wiring.

Choose Capacitive When

Very low pressure ranges are needed (0 to 1 mbar to 0 to 100 mbar).

The highest temperature stability is required: meteorology, clean rooms, calibration reference. Long-term drift stability over years of service is critical.

Piezoresistive Pressure Sensor Strengths

High bandwidth (DC to kHz). Simple, low-cost signal conditioning. Very high overpressure tolerance. Wide pressure range coverage. Widely available from multiple manufacturers. Proven track record in industrial service since the 1970s.

Capacitive Strengths

Lower temperature coefficient before compensation.

Better resolution at very low pressures and lower noise floor for DC measurements.

Self-cancelling differential capacitance bridge is inherently immune to common-mode temperature shifts.

Sensor Technology Selection Checker

Piezoresistive Pressure Sensor vs Capacitive Recommender
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Watch: Pressure Sensor Types Including Piezoresistive and Capacitive

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Piezoresistive Pressure Sensor FAQ

What is a piezoresistive pressure sensor?
Four silicon piezoresistors in a piezoresistive pressure sensor element form a Wheatstone bridge. Pressure deflects the diaphragm, changing resistor values and producing a bridge output voltage proportional to pressure.
What is the difference between piezoresistive and capacitive pressure sensors?
A piezoresistive pressure sensor measures strain-induced resistance change (Wheatstone bridge). A capacitive sensor measures the gap change between two plates. Piezoresistive types are lower cost with higher bandwidth. Capacitive types have lower temperature sensitivity and better low-pressure resolution.
Why does a piezoresistive sensor have a large temperature coefficient?
The gauge factor of silicon piezoresistors changes at approximately minus 0.2% per °C because carrier mobility in the crystal is temperature-dependent. This is compensated by the ASIC using stored polynomial correction coefficients.
Which pressure sensor type has better dynamic response?
Piezoresistive sensors cover DC to several kHz because they use a simple DC-excited bridge. Capacitive sensors need high-frequency AC excitation and synchronous demodulation, limiting bandwidth to below 500 Hz.
Do industrial pressure transmitters use piezoresistive or capacitive sensing?
Both are used in industry. Yokogawa EJX uses piezoresistive silicon resonant sensing. Rosemount 3051 uses differential capacitive sensing. Both achieve comparable accuracy after ASIC compensation; the choice reflects target accuracy, temperature performance, and cost.

External References

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What We Learn Today

  • A piezoresistive pressure sensor uses strain-induced resistance changes in a silicon Wheatstone bridge. Gauge factor in silicon (100 to 175) is 50 times higher than metal foil gauges (2 to 4).
  • A capacitive sensor measures the gap change between a flexible diaphragm and a fixed backplate. Full-scale capacitance change is only 1 to 20 pF, requiring complex high-frequency signal conditioning.
  • Choose piezoresistive for dynamic measurement (bandwidth to several kHz), high pressure (above 1 bar), and lower cost. Choose capacitive for ultra-low pressure (below 100 mbar) and best temperature stability.
“Both piezoresistive pressure sensor and capacitive sensing technologies achieve the same industrial accuracy after ASIC compensation. The difference is in how much correction is needed and what happens when that correction cannot keep up with the process conditions.”

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