MSI Gaming GF65 9SEXR-1019XIT Thin RAM upgrade specifications

MSI GF65 9SEXR-1019XIT Thin MSI GF65 9SEXR-1019XIT Thin MSI GF65 9SEXR-1019XIT Thin MSI GF65 9SEXR-1019XIT Thin MSI GF65 9SEXR-1019XIT Thin

MSI GF65 9SEXR-1019XIT Thin gaming laptop supports DDR4-SDRAM memory upgrade through 2x SO-DIMM slots. Maximum capacity reaches 64 GB total RAM. Compatible memory operates at 2666 MHz frequency with SO-DIMM form factor. Specifications enable upgrade configurations from base memory to full 64 GB capacity for enhanced multitasking and performance capabilities.

Memory Upgrade Specifications

SpecificationValue
Memory slots2x SO-DIMM
Form factorSO-DIMM
Memory typeDDR4-SDRAM
Frequency2666 MHz
Maximum RAM64 GB
Voltage1.2V
Number of pins260-pin
InterfacePC4
PC Speed RatingPC4-2666 (PC4-21328)
Bandwidth21.3 GB/s
Laptop Release date28 August 2020

Additional Notes

  • Storage of internal components within the MSI GF65 9SEXR-1019XIT Thin requires dual channel parity for optimal memory controller throughput.
  • Upgrading to modules with speeds exceeding 2666 MHz results in automatic downclocking to match the native architectural frequency limitations of the 9th generation mobile chipset.
  • The 64 GB threshold represents the maximum addressable density for the integrated memory controller across the 2 available physical slots.
  • Utilizing a single SO-DIMM module instead of 2 identical sticks halves the potential memory bandwidth and impacts frame rate stability in modern titles.
  • Replacement of existing modules necessitates a complete removal of factory hardware because no soldered memory or additional expansion headers exist.
  • Installation of high density 32 GB modules per slot requires BIOS level support for dual rank memory configurations to ensure boot stability.
  • Thermal dissipation requirements increase alongside memory density which may affect the cooling overhead of the thin chassis during sustained workloads.
  • Latency timings should match the original specifications to prevent system instability or failure to POST when mixing different brands of memory.