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Zero Dielectric Memory 1000pF 80V MOS Capacitor Ultra-Linear CV Characteristics Paraelectric SiO2 Single Layer RF Chip

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Zero Dielectric Memory 1000pF 80V MOS Capacitor Ultra-Linear CV Characteristics Paraelectric SiO2 Single Layer RF Chip

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Rated Voltage : 80V DC

Substrate Resistivity : >1000 Ohm·cm, Float-zone Silicon

Mounting Type : Wire Bondable / Conductive Epoxy or AuSn Eutectic Die Attach

Aging Rate : 0% per decade-hour (no ferroelectric aging)

ESR @ 1GHz : <0.15 Ohm

Substrate : Float-Zone Si, >1000 Ohm·cm

Dielectric Absorption : <0.1% @ 1kHz

Intrinsic Chip ESL : <0.08nH

TCC : +35 ppm/°C (-55°C to +125°C)

Dielectric : Thermal SiO2, 300nm (paraelectric, zero memory)

DC Bias Capacitance Droop : Negligible (<0.1% at rated 80V DC)

Insulation Resistance : ≥10⁴ MΩ @ Rated Voltage DC, 25°C

Place of Origin : Shaanxi, China

Leakage @ 25°C / @ 125°C : <10nA / <100nA at 80V DC

Moisture Sensitivity : MSL 1 (Unlimited floor life per J-STD-020)

Delivery Time : 1-2 weeks for standard stock, 3-4 weeks for custom production

SRF (0.5mm bond wire) : >300MHz

Dissipation Factor : ≤0.15% @ 1kHz, 1.0 Vrms

Model Number : HACC102S80V500

Payment Terms : L/C,D/A,D/P,T/T,

Design Architecture : Double-Sided Bordered (Margin)

Operating Temperature : -55°C to +125°C

Top Metallization : TiW-Au, ≥2.5µm Au

Brand Name : Hoan

Dielectric Memory : Zero (paraelectric SiO2, no ferroelectric domains)

Backside Metallization : TiW-Pt-Au, ≥1.0µm Au (Pt barrier)

MOQ : 10 Pieces

C-V Linearity : Ultra-linear, <10 ppm/V DC bias coefficient

Wire Bond Pull Strength : >6 gf for 25µm Au wire (MIL-STD-883 Method 2011.7)

Q Factor @ 1MHz / @ 1GHz : >1500 / >150

Capacitance : 1000pF ±10% (±5% available)

Chip Dimensions : 0.75 × 0.75 × 0.15 mm

Certification : ISO 9001:2015, RoHS, REACH

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HACC102S80V500 Zero Dielectric Memory MOS Capacitor: 1000pF 80V with Ultra-Linear C-V Characteristics and Paraelectric SiO2 Dielectric

The HACC102S80V500 is a 1000pF ±10% single-layer MOS capacitor rated at 80V DC, fabricated on float-zone silicon (>1000Ω·cm) with 300nm thermally-grown paraelectric SiO2 dielectric. Chip dimensions are 0.75mm × 0.75mm × 0.15mm with TiW-Au top metallization (2.5µm minimum Au) and TiW-Pt-Au backside (1.0µm minimum Au, Pt barrier). This device is engineered for precision analog and RF applications where dielectric memory effects, capacitance nonlinearity with voltage, and long-term capacitance drift are design-limiting factors. Fully customizable: capacitance from 10pF to 1000pF, voltage ratings from 6.3V to 100V, custom chip geometries, and alternative metallization options available.

1. Zero Dielectric Memory—The Paraelectric Advantage of Thermal SiO2

Dielectric memory is a fundamental limitation of ferroelectric ceramic dielectrics used in Class II MLCCs (X7R, X5R, Y5V) and many thin-film capacitors. In ferroelectric materials like barium titanate (BaTiO3), the spontaneous polarization of crystalline domains creates a voltage-dependent capacitance that exhibits both hysteresis (memory of prior bias state) and logarithmic aging (relaxation of domain polarization over time). The HACC102S80V500 eliminates both effects entirely by using thermally-grown silicon dioxide—a purely paraelectric dielectric with no ferroelectric domains:

  • Zero Dielectric Absorption: When a capacitor is momentarily shorted after being charged, an ideal dielectric returns to zero voltage. In practice, ferroelectric dielectrics retain a residual voltage (typically 0.1–5% of the original charge) that slowly decays over seconds to minutes—a phenomenon known as dielectric absorption or soakage. The HACC102S80V500's paraelectric SiO2 exhibits dielectric absorption below 0.1% at 1kHz—an order of magnitude improvement over Class II ceramics (2–5%). In precision sample-and-hold circuits, a 5% dielectric absorption error translates directly to a 5% voltage measurement error. The <0.1% absorption of SiO2 reduces this error to negligible levels.
  • Zero Aging Rate: Class II X7R capacitors exhibit a logarithmic capacitance decay of approximately 3–5% per decade-hour due to ferroelectric domain relaxation. A 1000pF X7R capacitor measured at t=0 will decay to approximately 950pF after 1000 hours, and continue declining logarithmically thereafter. The HACC102S80V500, with its paraelectric SiO2 dielectric, has zero ferroelectric domains and therefore zero aging—capacitance measured at t=0 and t=10 years (87,600 hours) will be identical within measurement uncertainty. For aerospace and industrial systems with multi-decade service lives, this eliminates a critical long-term drift mechanism that would otherwise require periodic recalibration.
  • No Hysteresis Loop: Ferroelectric dielectrics exhibit a characteristic polarization-versus-voltage (P-V) hysteresis loop analogous to the B-H loop of magnetic materials. In capacitor terms, this means the capacitance measured while increasing voltage differs from the capacitance measured while decreasing voltage—creating a history-dependent uncertainty band of 2–10% in ferroelectric MLCCs. The paraelectric SiO2 in the HACC102S80V500 has no P-V hysteresis; capacitance is a single-valued function of the instantaneous voltage and temperature, regardless of prior bias history.

2. Ultra-Linear C-V Characteristics—Capacitance Independent of Applied Voltage

The capacitance of a ferroelectric MLCC decreases significantly under DC bias voltage—a phenomenon known as the DC bias coefficient or voltage coefficient of capacitance (VCC). Class II X7R dielectrics can lose 30–80% of their rated capacitance at the rated DC voltage. The HACC102S80V500 eliminates this degradation through the paraelectric nature of SiO2:

  • Ultra-Low VCC (<10 ppm/V): Unlike the barium titanate perovskite crystal structure, which changes its dielectric constant in response to an applied electric field (the electrostrictive effect), the amorphous SiO2 dielectric constant of 3.9 is fundamentally independent of applied field. The measured VCC of <10 ppm/V means a 1000pF capacitor at 0V DC maintains 999pF at 80V DC—a change of less than 0.1%. This is a 300–800× improvement over X7R MLCCs.
  • Predictable Circuit Behavior: In an RF power amplifier bias network, a decoupling capacitor that experiences 50% capacitance droop under the nominal bias voltage creates a resonance shift in the bias tee that can detune the matching network by hundreds of MHz at microwave frequencies. The HACC102S80V500's ultra-linear C-V characteristic eliminates this source of impedance uncertainty, enabling predictable circuit simulation and first-pass design success.
  • No AC Amplitude Nonlinearity: In addition to DC bias effects, ferroelectric dielectrics exhibit capacitance variation with AC signal amplitude—the C-V curve is nonlinear even around the zero-bias point. This creates harmonic distortion: a sinusoidal voltage across a nonlinear capacitor generates harmonic currents. The paraelectric SiO2 in the HACC102S80V500 has a linear dielectric response up to the dielectric breakdown field (>10MV/cm), meaning the capacitance is independent of AC signal amplitude for all practical RF power levels through the device.

Key Features

  • Zero Dielectric Memory: Paraelectric SiO2 dielectric with no ferroelectric domains eliminates dielectric absorption hysteresis, logarithmic aging, and P-V hysteresis. Dielectric absorption <0.1%, aging rate 0% per decade-hour.
  • Ultra-Linear C-V Characteristics: Capacitance varies less than 0.1% from 0V to 80V rated DC voltage (<10 ppm/V VCC). No AC amplitude nonlinearity up to dielectric breakdown. 300–800× improvement over X7R MLCC.
  • High Voltage Rating (80V DC): 300nm thermal SiO2 dielectric provides >200V DWV (250% rated) with >10MV/cm intrinsic breakdown strength. Suitable for high-voltage bias networks in GaN power amplifiers.
  • High Capacitance Density (1000pF): 1000pF in 0.75mm × 0.75mm footprint provides the highest capacitance available in the single-layer MOS platform—suitable for low-frequency bypass and coupling where MLCCs would introduce dielectric memory errors.
  • Customizable Platform: Capacitance from 10pF to 1000pF across standard footprints from 0.50mm to 1.00mm. Custom voltage ratings, chip geometries, and metallization options available.

Electrical Specifications (T = 25°C unless noted)

Parameter Value Condition
Capacitance 1000pF ±10% 1MHz, 1.0Vrms
Available Tolerances ±10% (K), ±5% (J)
Rated DC Voltage 80V Continuous
Dielectric Withstanding Voltage >200V DC (250% rated) 5 sec dwell, 100% production test
Capacitance vs. DC Bias (VCC) <10 ppm/V (<0.1% at rated 80V) 0V to rated voltage
Dielectric Absorption <0.1% 1kHz
Aging Rate 0% per decade-hour Paraelectric dielectric
Intrinsic Chip ESL <0.08nH De-embedded
SRF (0.5mm bond wire) >300MHz Single 25µm Au wire
Q Factor @ 1MHz / @ 1GHz >1500 / >150 Typical
ESR @ 1GHz <0.15Ω Typical
Dissipation Factor ≤0.15% 1kHz, 1.0Vrms
Leakage Current @ 25°C <10nA 80V DC
Leakage Current @ 125°C <100nA 80V DC
TCC +35ppm/°C -55°C to +125°C
Insulation Resistance ≥104 Rated Voltage DC, 25°C
Dielectric Thermal SiO2, 300nm (paraelectric)
Substrate Float-zone Si, >1000Ω·cm
Chip Dimensions 0.75 × 0.75 × 0.15mm ±0.025mm
Top Metallization TiW-Au, ≥2.5µm Au
Backside Metallization TiW-Pt-Au, ≥1.0µm Au Pt diffusion barrier
Design Architecture Double-Sided Bordered (Margin)
Wire Bond Pull Strength >6gf for 25µm Au wire MIL-STD-883 Method 2011.7
Operating Temperature -55°C to +125°C Full parametric
Storage Temperature -65°C to +150°C
Moisture Sensitivity MSL 1 J-STD-020, unlimited floor life
RoHS Compliant EU 2015/863

Typical Applications

  • Precision sample-and-hold (S/H) circuits where dielectric absorption directly limits measurement accuracy
  • High-resolution ADC input filters where capacitor dielectric memory creates voltage-dependent offset errors
  • GaN power amplifier high-voltage bias decoupling requiring both 80V rating and zero DC bias capacitance droop
  • Precision analog filters (Bessel, Butterworth, elliptic) where capacitance tolerance and linearity define filter passband accuracy
  • Charge-sensitive preamplifiers for radiation detectors where dielectric absorption creates baseline restoration errors
  • Medical imaging and scientific instrumentation requiring multi-year calibration stability without capacitance drift

Assembly Quick Reference

  • Die Attach: AuSn eutectic solder (300–320°C, N2/H2 forming gas) for lowest ground resistance. Conductive Ag epoxy (Epotek H20E, 120°C/30min) as alternative.
  • Wire Bonding: 25µm Au thermosonic ball bonding (120–150°C stage, 15–35gf force, >6gf pull strength). Bond landing ≥25µm from electrode edge.
  • Storage: Waffle pack or gel-pak, vacuum-sealed with nitrogen purge. MSL 1 unlimited floor life. Store at 20–25°C, 40–60% RH.

Ordering and Custom Configuration

Standard product ships as 0.75mm × 0.75mm square chips in conductive waffle packs. Custom configurations available with minimum order quantities starting at 10 pieces:

  • Custom capacitance from 10pF to 1000pF on standard footprints (0.50mm–1.00mm)
  • Voltage ratings from 6.3V to 100V DC
  • Rectangular chip geometries up to 4:1 aspect ratio
  • Alternative backside metallization for specific assembly processes

Contact us with your target specifications for a feasibility assessment and quotation. Standard 1000pF evaluation samples ship within 1–2 weeks.


Product Tags:

80V MOS capacitor ultra-linear CV

      

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