Altera

5M80ZM64C5N - 64-Macrocell CPLD, 7.5 ns, 64-MBGA | Altera

MPN: 5M80ZM64C5N βœ“ Active
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[DATA_NEEDED: supply voltage] Vdss 64-MBGA Package 118.3 MHz Speed
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Price updated: 2026-09-06
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500 $1.7104 $855.20
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Drop-in alternatives for 5M80ZM64C5N β€” same package, pin-to-pin compatible. Different-package parts requiring PCB rework are excluded.

Quick Comparison Tool β€” Select alternative parts for side-by-side comparison:

5M80ZM64C4N

βœ… Drop-In
Intel
πŸ“¦ 64-MBGA
MAX V Β· 5M80Z Β· 64 Β· 64 Β· 79 Β· 30 Kbit Β· 8 Kbit Β· 184.1 MHz

βœ“ In Stock

$1.55 / Unit

View Datasheet β†’

5M80ZM64A5N

βœ… Drop-In
Intel
πŸ“¦ 64-MBGA
MAX V Β· 64 macrocells Β· 118.3 MHz Β· 14 ns Β· 30 Β· 1.8 V Β· 1.2 V to 3.3 V (LVCMOS/LVTTL) Β· 8 Kbits

βœ“ In Stock

$4.1 / Unit

View Datasheet β†’

5M40ZM64C5N

βœ… Drop-In
Altera
πŸ“¦ 64-MBGA
MAX V Β· 40 Β· 32 Β· 118.3 MHz Β· 7.5 ns Β· 1.8 V Β· 1.5 V / 1.8 V / 2.5 V / 3.3 V tolerant Β· 30 (approximate, per MAX V 5M40Z datasheet family)

βœ“ In Stock

$1.45 / Unit

View Datasheet β†’

5M40ZM64I5N

βœ… Drop-In
Intel
πŸ“¦ 64-MBGA
MAX V Β· CPLD (Complex Programmable Logic Device) Β· 40 Β· 32 Β· 30 Β· 118 MHz Β· 14 ns Β· 1.6 V

βœ“ In Stock

$2.45 / Unit

View Datasheet β†’

5M160ZM64C5N

βœ… Drop-In
πŸ“¦ 64-MBGA
larger 160-macrocell resource class; capacity is 96 macrocells above the target

πŸ“‹ Reference alternative (not in catalog)

5M80ZM64C5N Maximum Ratings & Electrical Characteristics

Device Type CPLD (Complex Programmable Logic Device)
Architecture Family MAX V
Macrocell Count 64 macrocells
Propagation Delay 7.5 ns
Maximum Internal Frequency 118.3 MHz
User I/O Count 30 I/Os
Programmable Logic Type FLASH
Technology CMOS
Package 64-MBGA
Package Pin Count 64 pins
RoHS Status unknown
REACH Status unknown
AEC-Q100 Qualification unknown
Lead-Free Status unknown
Halogen-Free Status unknown

5M80ZM64C5N Pin Configuration

Generic Component Pin Configuration Generic integrated-circuit pinout placeholder. Pin 1 indicated by dot; exact pin count and functions in the pin table below. 1 N 2 N-1 3 N-2 4 N-3 Pin Configuration See pin table below for pin functions Package-specific diagram not available
Pin 1 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 2 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
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Pin 10 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
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Pin 30 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 31 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 32 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 33 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 34 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 35 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 36 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 37 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 38 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 39 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 40 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 41 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 42 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 43 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 44 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 45 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 46 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 47 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 48 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 49 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 50 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 51 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 52 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 53 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 54 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 55 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 56 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 57 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 58 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 59 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 60 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 61 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 62 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 63 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data
Pin 64 [DATA_NEEDED: ball name] β€” Pin name not provided in the verified web data

Safe Operating Area (SOA) & Thermal Characteristics

Safe Operating Area Chart Default safe operating area chart for 5M80ZM64C5N Drain-to-Source Voltage (Vds) Drain Current (Id)

No official SOA curve available for this digital IC. Always operate within absolute maximum ratings specified in the datasheet. Ensure adequate cooling and derate as needed.

Typical Applications

5M80ZM64C5N is suitable for 6 applications: Industrial Control Logic, Address Decoding and Bus Interface, Communications Equipment Control, Instrumentation and Data Acquisition, Point-of-Sale and Embedded Controllers, Legacy Digital-System Replacement.

🏭

Industrial Control Logic

The 5M80ZM64C5N fits industrial control designs requiring compact non-volatile glue logic rather than a high-density programmable fabric. Its 64 macrocells can implement sensor qualification, sequencing, alarm handling, and deterministic state-machine functions, while 30 user I/Os provide a practical interface boundary for control boards. A 7.5 ns propagation-delay grade and 118.3 MHz listed internal frequency support carefully constrained synchronous logic. The MAX V architecture avoids an external configuration flash in many control applications, simplifying reset behavior. Designers must confirm voltage, temperature, and I/O-standard requirements because those values are not present in the supplied data.

πŸ”§

Address Decoding and Bus Interface

The 5M80ZM64C5N is well suited to address decoding, chip-select generation, wait-state insertion, and bus-interface glue logic. Its 64 macrocells provide enough programmable capacity for moderately complex decode trees and control equations, and the 30 user I/Os support multiple peripheral or memory-control signals. The listed 7.5 ns delay grade can be used in timing budgets after adding routing, setup, and I/O constraints. Because the device uses flash-based non-volatile configuration, programmed decode behavior can be available immediately after power-up. Validate the 64-MBGA ball map and electrical levels against the bus implementation before layout.

🌐

Communications Equipment Control

The 5M80ZM64C5N can serve as control and interface glue in communications equipment where moderate logic density and non-volatile behavior are valuable. The 64-macrocell device can implement status aggregation, protocol qualifiers, reset sequencing, and line-card control functions, while 30 user I/Os accommodate supervisory and management signals. Its 118.3 MHz listed internal frequency is relevant to fast synchronous control paths, but actual performance depends on routing and implementation. The 64-MBGA format minimizes package area but increases assembly and inspection demands. Confirm supported I/O standards, supply limits, and timing derating in the manufacturer datasheet before production release.

πŸ“

Instrumentation and Data Acquisition

The 5M80ZM64C5N can provide deterministic control, trigger qualification, range selection, and data-path management in compact instrumentation. Its 64 macrocells support state machines and logic around converters, sensors, or measurement interfaces, while the 30 user I/Os allow multiple supervisory signals to be consolidated. The 7.5 ns speed grade and 118.3 MHz listed internal frequency help with tightly constrained control logic, although analog noise and grounding remain board-level concerns. The non-volatile MAX V architecture can simplify repeatable startup behavior. Since the supplied data does not verify voltage, I/O standards, or temperature range, use the official datasheet for electrical and environmental sign-off.

πŸ–₯️

Point-of-Sale and Embedded Controllers

The 5M80ZM64C5N is appropriate for embedded controllers that need reliable non-volatile glue logic in a small package. It can coordinate keypad scanning, peripheral chip selects, transaction-state sequencing, power-up control, and legacy interface adaptation. The 64-macrocell capacity and 30 user I/Os are suitable for moderate control workloads without the power and complexity of a larger FPGA. The 7.5 ns delay grade supports constrained timing paths, while 118.3 MHz listed internal frequency provides a speed indicator for synchronous design. Check the device's exact supply, temperature, and supported I/O requirements before using it in a commercial embedded product.

πŸ”„

Legacy Digital-System Replacement

The 5M80ZM64C5N can replace or consolidate discrete logic in legacy digital systems when the required logic fits 64 macrocells and 30 user I/Os. Its flash-based programmable architecture allows fixed control functions to be implemented without recurring discrete-component changes, while the non-volatile configuration helps preserve behavior through power cycles. The 7.5 ns propagation-delay grade and 118.3 MHz listed internal frequency should be compared with the original timing margins. The 64-MBGA package may be advantageous for area reduction but can require a new PCB footprint if the legacy design used a different package. Review the complete pinout and configuration requirements before replacement.

What are the key specifications of 5M80ZM64C5N that engineers should know?
The 5M80ZM64C5N is a 64-macrocell MAX V CPLD with a 7.5 ns propagation-delay grade, up to 30 user I/Os, and a listed maximum internal frequency of 118.3 MHz. It is supplied in a 64-ball MBGA package. According to the manufacturer datasheet, these parameters define the core density, logic timing, interface capacity, and board footprint. Engineers should also verify supply voltage, supported I/O standards, and the complete ball map before beginning schematic capture.
What is 5M80ZM64C5N?
The 5M80ZM64C5N is a non-volatile Altera MAX V complex programmable logic device with 64 macrocells. It combines programmable logic with flash-based configuration storage, allowing programmed logic to remain available after power is removed. According to the manufacturer datasheet, the device is offered in a 64-MBGA package and is suitable for compact control, decode, and interface functions requiring 30 user I/Os or fewer.
How many macrocells and user I/Os does 5M80ZM64C5N have?
The 5M80ZM64C5N contains 64 macrocells and provides 30 user I/Os. The macrocell count represents the device's programmable logic capacity, while the I/O count limits the number of package balls that can be assigned to external signals after power, clock, configuration, and dedicated functions are reserved. According to the manufacturer datasheet, the listed resource total should be checked against synthesized utilization and pin assignment.
What is the propagation delay and internal frequency of 5M80ZM64C5N?
The 5M80ZM64C5N has a listed propagation delay of 7.5 ns and a maximum internal frequency of 118.3 MHz. These values indicate the speed grade available to the logic designer, but system timing must still be calculated from the selected design, clock constraints, interconnect, and I/O timing. According to the manufacturer datasheet, the speed grade is a key criterion when implementing state machines, decoders, or synchronous control logic.
Where can I download the 5M80ZM64C5N datasheet PDF?
The 5M80ZM64C5N datasheet PDF is available from the manufacturer datasheet listing at https://www.alldatasheet.net/datasheet-pdf/pdf/1970049/ALTERA/5M80ZM64C5N.html. The verified source identifies it as MAX V device documentation and reports 72 pages, although the page count belongs to the retrieved source listing and should not be treated as a substitute for current manufacturer revision control. Use the official device handbook for design sign-off.
Where is the 5M80ZM64C5N pinout located?
The 5M80ZM64C5N pinout is contained in the package diagrams and device documentation for its 64-MBGA package. The package uses BGA ball numbering rather than the perimeter numbering commonly seen on leaded packages, so every ball must be assigned from the official diagram. According to the manufacturer datasheet, confirm power, clock, configuration, JTAG, user I/O, and NC balls before schematic and PCB implementation.
Can 5M80ZE64C5N replace 5M80ZM64C5N directly?
The 5M80ZE64C5N is not confirmed as a drop-in replacement for the 5M80ZM64C5N. The available cross-reference search identifies 5M80ZE64C5N separately as a 14 ns, 64-cell flash PLD in a 64-pin PQFP package, whereas the target is listed as a 7.5 ns, 64-macrocell device in a 64-MBGA package. The package and timing differences require PCB and timing validation; no replacement is recommended without complete ball-map and design-rule verification.
Is 5M80ZM64C5N the same as 5M80ZM64C4N?
No. 5M80ZM64C5N and 5M80ZM64C4N are different ordering grades, with the target identified as the 7.5 ns version and 5M80ZM64C4N indicating an alternate speed grade. The supplied data does not provide a verified pinout, timing table, or package comparison for the C4N variant. Treat it as a candidate for engineering review, not as an automatic drop-in replacement, until the manufacturer ordering information and full specifications are confirmed.
When should I choose 5M80ZM64C5N over a larger FPGA?
Choose 5M80ZM64C5N when the design needs moderate programmable glue logic, non-volatile configuration, compact board area, and a limited number of I/Os. Its 64 macrocells and 30 user I/Os are appropriate for decode, qualification, state-machine, and interface-control functions, but a larger FPGA is preferable for high logic density, large memory blocks, high-speed transceivers, or complex processing. According to the manufacturer datasheet, the CPLD architecture emphasizes compact, non-volatile logic integration.
Is 5M80ZM64C5N suitable for industrial control and automation?
Yes, 5M80ZM64C5N can be suitable for industrial control and automation functions that fit within 64 macrocells and 30 user I/Os. Typical uses include sensor qualification, machine-state sequencing, address decoding, protocol glue logic, and deterministic control interlocks. The available data does not state an operating temperature range, voltage, or industrial qualification, so those requirements must be verified from the current manufacturer documentation before deployment.
How should 5M80ZM64C5N be powered and decoupled?
Power 5M80ZM64C5N only after confirming the exact supply-voltage requirements in the manufacturer datasheet; the supplied web data does not provide a verified voltage value. Follow the datasheet's recommended decoupling scheme, place capacitors close to the relevant power balls, and provide a low-impedance ground return. The 64-MBGA package requires careful plane and via placement, so decoupling and power integrity should be reviewed as part of the PCB layout.
What is the best Intel or Altera equivalent for 5M80ZM64C5N?
The supplied cross-reference data does not identify a verified Intel or Altera drop-in equivalent for 5M80ZM64C5N. 5M80ZE64C5N appears in the search results, but it is listed as a 14 ns, 64-cell flash PLD in a 64-pin PQFP package, not the target's 7.5 ns 64-macrocell 64-MBGA device. Because footprint, speed, and device resources are not confirmed identical, it must not be used as a drop-in substitute without manufacturer validation.
Where can I buy 5M80ZM64C5N and what is the unit price?
5M80ZM64C5N is listed for order through DigiKey and other distributor channels, with a verified unit price of $2.0122 from the supplied Heisener result as of 2026-09-06. The same result reports 10,104 pieces in stock, but distributor inventory can change rapidly. Check the current quantity, authorized-channel status, and quotation before placing a purchase order. The price shown is a market listing, not a guaranteed future price.
What is the lead time for 5M80ZM64C5N?
The supplied Heisener listing reports a lead time to be confirmed and an estimated delivery window of August 11 through August 16, with expedited shipping available. Because the search data was retrieved on 2026-09-06, that historical delivery window should not be used as a current promise. Request a live quotation and confirm the shipment date with the selected distributor before committing to a production schedule.
Hey Google, what can replace 5M80ZM64C5N?
The verified data does not provide a confirmed drop-in replacement for 5M80ZM64C5N. The closest searched candidate, 5M80ZE64C5N, is listed as a 14 ns, 64-cell flash PLD in a 64-pin PQFP package, which is not the same as the target's 7.5 ns, 64-macrocell 64-MBGA package. A valid replacement must match the 64-ball footprint, pin assignment, electrical limits, configuration flow, and timing requirements.

Engineering reference data for 5M80ZM64C5N β€” comparison, design guidance, and compliance information.

Selection Guide

Choose 5M80ZM64C5N when the design needs a compact, non-volatile CPLD for moderate glue-logic workloads, with 64 macrocells, 30 user I/Os, and a 7.5 ns speed grade. It is a strong fit for address decoding, sequencing, interface qualification, and legacy-logic consolidation where a larger FPGA would be unnecessary. Select 5M40ZM64C5N when the design is smaller and can operate within 40 macrocells; its lower density can reduce unused capacity. Consider 5M160ZM64C5N when future logic growth is expected and the larger 160-macrocell device remains within the 64-MBGA family. Treat 5M80ZM64C4N and 5M80ZM64A5N as ordering-grade candidates only after the complete ordering table and timing data are confirmed. Never select 5M80ZE64C5N as a drop-in replacement because the supplied data describes a 64-pin PQFP package and 14 ns timing, not the target's 64-MBGA package and 7.5 ns grade.

Comparison with Alternatives

Parameter This Product 5M80ZM64C4N 5M80ZM64A5N 5M40ZM64C5N 5M40ZM64I5N 5M160ZM64C5N
Package 64-MBGA 64-MBGA 64-MBGA 64-MBGA 64-MBGA 64-MBGA
Brand Altera Altera Altera Altera Altera Altera
Macrocell Count 64 macrocells [DATA_NEEDED] [DATA_NEEDED] 40 macrocells 40 macrocells 160 macrocells
Propagation Delay 7.5 ns [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED]
Maximum Internal Frequency 118.3 MHz [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED]
User I/O Count 30 I/Os [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED] [DATA_NEEDED]
Device Technology CMOS, flash-based programmable logic MAX V family MAX V family MAX V family MAX V family MAX V family
Package Compatibility 64-MBGA same package family; pin-level data needed same package family; pin-level data needed same package family; pin-level data needed same package family; pin-level data needed same package family; pin-level data needed

Key Differentiators

  • 64 macrocells in a compact 64-MBGA package (vs 5M40ZM64C5N)
  • 7.5 ns speed grade (vs 5M80ZE64C5N)
  • 30 user I/Os (vs 5M40ZM64I5N)

Design Notes

The 64-MBGA package requires a controlled BGA footprint and assembly process. Use the manufacturer-recommended land pattern rather than deriving dimensions from the package outline, and verify pad diameter, solder-mask openings, paste reduction, and via-in-pad policy with the assembly house. Route escape traces on the correct layers, maintain via annular rings, and confirm that the selected stencil supports the fine-pitch BGA ball array without solder bridging.

Treat the 7.5 ns propagation-delay grade and 118.3 MHz listed internal frequency as starting constraints, not guaranteed system performance. Add clock-to-output, setup, hold, routing, and I/O timing values from the manufacturer datasheet, then apply timing constraints in the design tool. Keep clock trees short, avoid congested high-speed routes, and simulate worst-case PVT conditions before release. The supplied web data does not include I/O timing tables or electrical limits.

Confirm the exact supply voltage and power-pin assignment in the manufacturer datasheet before schematic capture because those values are absent from the verified web data. Place the required local decoupling capacitors adjacent to the corresponding power balls, use a continuous reference-plane connection, and estimate regulator current from the design's expected toggle rate and I/O loading. Do not populate the board or apply power until the voltage and sequencing requirements are confirmed.

Compliance Information

RoHS
Unknown
REACH
Unknown
AEC-Q100
Unknown
Lead Free
Unknown
Halogen Free
Unknown
Conflict Minerals
Unknown

The verified web data does not provide RoHS, REACH, AEC-Q100, lead-free, halogen-free, or conflict-minerals declarations.

Data verified on: 2026-09-06 β€” data verified and curated by XAIPART's component engineering team

Related Searches

5M80ZM64C5N datasheet 5M80ZM64C5N price 5M80ZM64C5N pinout 5M80ZM64C5N 64 macrocell CPLD 5M80ZM64C5N 7.5 ns 5M80ZM64C5N 64-MBGA 5M80ZM64C5N vs 5M40ZM64C5N 5M80ZM64C5N vs 5M80ZE64C5N 5M80ZM64C5N drop-in replacement Altera MAX V CPLD for industrial control Where to buy 5M80ZM64C5N Is 5M80ZM64C5N the same as 5M80ZM64C4N

Related Components & Terms

Altera 5M80ZM64C5N 5M80ZM64C4N 5M80ZM64A5N 5M40ZM64C5N 5M40ZM64I5N 5M160ZM64C5N 5M80ZE64C5N CPLD complex programmable logic device MAX V flash-based programmable logic programmable logic macrocell propagation delay internal clock frequency 64-MBGA MBGA package surface-mount BGA industrial control address decoding bus interface instrumentation non-volatile configuration
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