Datasheet
LPC55S6x All information provided in this document is subject to legal disclaimers. © NXP Semiconductors N.V. 2019. All rights reserved.
Product data sheet Rev. 1.0 — 26 February 2019 73 of 123
NXP Semiconductors
LPC55S6x
32-bit ARM Cortex-M33 microcontroller
[1] Typical ratings are not guaranteed. Typical values listed are at room temperature (25 C), nominal supply voltages.
[1] Typical ratings are not guaranteed. Typical values listed are at room temperature (25 C), nominal supply voltages.
Table 18. Static characteristics: ADC Power consumption
T
amb
= 40 C to +105 C, unless otherwise specified.0.985 V V
REFP
V
DDA
V; 1.8 V V
DDA
3.6 V.
Symbol Parameter Conditions Min Typ
[1]
Max Unit
I
DDA
analog supply current ADC on; sampling a single
channel at <tbd> ADC clock
frequency
- 0.7 - mA
ADC in low power mode;
PWRSEL = 0
- 0.6 - mA
Deep-sleep mode, ADC off - 10 - nA
Power-down mode, ADC off - 6 - nA
Deep power-down mode, ADC
off
-5-nA
I
DD(VREFP
) supply current on pin
VREFP
ADC on; sampling a single
channel at <tbd> ADC clock
frequency
- 0.1 - mA
ADC in low power mode; ADC
in low power mode; PWRSEL
= 0
- 0.1 - mA
Table 19. Static characteristics: USB Power consumption
T
amb
= 40 C to +105 C, unless otherwise specified.1.8 V V
DD
3.6 V; <tbd> V V
DDA
3.6 V.
Symbol Parameter Conditions Min Typ
[1]
Max Unit
I
DD(VBUS)
VBUS supply current
for USB1
Power-down
mode/Deep-power-down
mode
-6-A
Conditions: V
DD
= 3.0 V; T
amb
= 25 °C; active mode; SRAMx powered. Measured with IAR v.8.20.2.
Optimization level 0, optimized for time off.
12 MHz, 48 MHz, 96MHz: FRO enabled; PLL disabled.
Fig 9. CoreMark power consumption: typical A/MHz for ARM Cortex-M33 (CPU0)
Conditions: all oscillators and analog blocks disabled <tbd>. All SRAM blocks enabled.
Fig 10. Deep-sleep mode: Typical supply current I
DD
versus temperature for different
supply voltages V
DD
<tbd>
Conditions: all oscillators and analog blocks disabled; all SRAM disabled except 4KB (SRAMX2
powered). Flash powered down.
Fig 11. Power-down mode: Typical supply current I
DD
versus temperature for different
supply voltages V
DD
<tbd>